ccording to the law of conservation of mass, which statement about chemical reactions is always true?

Answers

Answer 1

Antoine Lavoisier proposed the Law of Conservation of Mass in 1789.

According to the mass conservation principle, mass in a closed system cannot be created or destroyed, but can only be transformed from one state to another. This means that the system's total mass stays constant over time, regardless of physical or chemical changes within the system.

This law is a fundamental principle in many branches of science, including chemistry and physics, and it has significant consequences for understanding how matter and energy behave in the universe. The idea of energy conservation is closely related to the law of conservation of mass, which says that the total amount of energy in a closed system is also conserved over time.

These laws, taken together, provide a framework for understanding the basic properties of matter and energy, as well as how they interact in the universe.

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Describe the Law of Conservation of Mass?

Answer 2

According to the law of conservation of mass, the statement that is always true about chemical reactions is: A) In a chemical reaction, matter is not created or destroyed, but is conserved.

A chemical reaction is the process in which one or more substances change into different substances. The starting substances are called reactants, and the substances that are produced are called products.

What is the law of conservation of mass?

The law of conservation of mass states that in a chemical reaction, matter is not created or destroyed, but is conserved. This implies that the mass of the reactants is equal to the mass of the products. This law means that the amount of matter that exists before and after a chemical reaction is the same.

Hence, the correct option for the statement about chemical reactions that is always true according to the law of conservation of mass is A. In a chemical reaction, matter is not created or destroyed, but is conserved.

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Related Questions

the ph at the endpoint of a titration of hn3 with naoh is 8.74. which indicators would be a good choice for this titration?

Answers

Thymol blue would be a good choice for this titration. As thymol blue has a pH range of 8 to 9.6, its color would change from yellow to green towards the end, making it the most obvious selection out of all of them.

If an indicator changes color at the end point, the end point has been reached and the indicator is being used to measure it. The conclusion of the titration is assumed to be at 8.74. Hence, the pH range of the indicator should be such that at 8.74, the color changes and is visible to the eye. As previously mentioned, a suitable indicator should have a pKin value that is quite near to the anticipated pH at the equivalence point. The choice of the indicator is not very important for a strong acid–strong base titration because of the significant pH shift that takes place at the equivalence point.

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you were given the values 0.2107, 2.253, 3.392, and 17.58 as the van der waals parameter a for the gases co2, ch3cn, ne, and ch4 but not the correspondence of the values to the compounds. what a value shoud be assigned to ch3cn?

Answers

The van der Waals parameter 'a' value that should be assigned to CH3CN is 17.58.

To determine the van der Waals parameter (a) value for CH3CN, we must first understand the significance of the van der Waals equation and the parameter "a" itself. The van der Waals equation accounts for the non-ideal behavior of gases by considering the finite size of gas particles and the attractive forces between them.

The "a" parameter represents the strength of the attractive forces between the gas particles.

Generally, larger and more polarizable molecules have higher "a" values due to stronger attractive forces. Now, let's compare the four given gases - CO2, CH3CN, Ne, and CH4.

1. CO2 (carbon dioxide) is a linear, non-polar molecule, but it has a relatively large molecular weight.
2. CH3CN (acetonitrile) is a polar molecule with a cyano group (-C≡N) and a methyl group (-CH3), leading to stronger attractive forces.
3. Ne (neon) is a noble gas with weak attractive forces due to its small size and low polarizability.
4. CH4 (methane) is a non-polar molecule with a smaller size compared to CO2 and CH3CN.

Based on this information, we can roughly rank the gases in terms of their expected "a" values: CH3CN > CO2 > CH4 > Ne.

Now, let's match the given values (0.2107, 2.253, 3.392, 17.58) to the compounds:

1. Ne has the smallest "a" value, so it corresponds to 0.2107.
2. CH4 has the next smallest "a" value, so it corresponds to 2.253.
3. CO2 has a larger "a" value than CH4, so it corresponds to 3.392.
4. CH3CN has the largest "a" value, so it corresponds to 17.58.

Thus, the "a" value assigned to CH3CN should be 17.58.

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How does the Gulf Stream affect the air masses above the ocean water?
A. causes the air masses to become cooler
B. causes the air masses to become warmer
C. causes the air masses to collide
D. causes the air masses to move along the jet stream

Answers

B. causes the air masses to become warmer. The Gulf Stream is a warm ocean current that flows from the Gulf of Mexico into the Atlantic Ocean.

The Gulf Stream is a powerful ocean current that transports warm water from the Gulf of Mexico into the Atlantic Ocean. This warm water is carried northward along the eastern coast of the United States and across the Atlantic towards Europe. The warm water of the Gulf Stream also has an impact on the atmosphere above it.

As warm water from the Gulf Stream evaporates, it adds moisture to the air above it, making the air warmer and more humid. This process is known as evaporation-induced cooling, and it can have a significant impact on the weather and climate of the regions surrounding the Gulf Stream.

The warm and moist air above the Gulf Stream creates instability in the atmosphere, which can lead to the formation of thunderstorms and other weather events. The Gulf Stream also affects the formation of hurricanes and other tropical storms, as it provides the warm water and moist air needed for these storms to develop.

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What volume of O₂ at 10.0° C and .890 atm would be required to generate 55.2 grams of NO₂? ​

Answers

The chemical reaction between oxygen and nitrogen dioxide has the following balanced chemical equation: 2Nitrogen dioxide + Oxygen -> 2Nitrogen dioxide

What is volume of oxygen required at 0 degree celsius and 1 atm to burn completely?

Hence volume of oxygen gas measured at 0oC and 1atm, needed to burn completely 1L of propane gas under the same conditions is 5L.

According to the equation, 2 moles of Nitrogen dioxide and 1 mole of Oxygen combine to form 2 moles of Nitrogen dioxide.

We must first determine how many moles of Nitrogen dioxide 55.2 grams will produce:

mass / molar mass equals moles of Nitrogen dioxide.

Nitrogen dioxide moles are equal to 55.2 g/46.0055 g/mol.

1.200 mol Equals 1 mole of Nitrogen dioxide.

We just require half as many moles of Oxygen since 1 mole of Oxygen produces 2 moles of Nitrogen dioxide:

1.200 moles of Oxygen are equal to 0.600 moles when divided by two.

Now, we can calculate the volume of Oxygen needed using the ideal gas law:

PV = nRT

P equals pressure where= 0.890 atm

V = volume (in liters)

n = number of moles = 0.600 mol

R = gas constant = 0.08206 L·atm/mol·K

T = temperature = 10.0 + 273.15 = 283.15 K

Solving for V:

V = nRT / P

V = (0.600 mol)(0.08206 L·atm/mol·K)(283.15 K) / 0.890 atm

V = 14.2 L

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5.2643mol of ethane is held at 0.9035 atm and 506.25 °C. what is the volume in liters?

Answers

To find the volume of ethane , we can use the Ideal gas law. Which states -

[tex] \:\:\:\:\:\:\:\:\:\star\longrightarrow \sf \underline{PV=nRT} \\[/tex]

Where:-

P is the pressure measured in atmospheres V is the volume measured in litersn is the number of moles.R is the ideal gas constant (0.0821 L atm mol⁻¹ K⁻¹).T is the temperature measured in kelvin.

As per question, we are given that-

P=0.9035 atm n=5.2643 moles T = 506.25°C = 506.25+273 = 779.25 KR = 0.0821 L atm mol⁻¹ K⁻¹

Now that we have all the required values, so we can put them all in the Ideal gas law formula and solve for Volume -

[tex] \:\:\:\:\:\:\:\:\:\star\longrightarrow \sf \underline{PV=nRT} \\[/tex]

[tex] \:\:\:\:\:\:\:\:\:\longrightarrow \sf 0.9035 \times V= 5.2643\times 0.0821 \times 779.25\\[/tex]

[tex] \:\:\:\:\:\:\:\:\:\longrightarrow \sf 0.9035 \times V= 336.791\\[/tex]

[tex] \:\:\:\:\:\:\:\:\:\longrightarrow \sf V= \dfrac{336.791}{0.9035}\\[/tex]

[tex] \:\:\:\:\:\:\:\:\:\longrightarrow \sf V= 372.762......\\[/tex]

[tex] \:\:\:\:\:\:\:\:\:\longrightarrow \sf \underline{V= 372.762 \: L}\\[/tex]

Therefore, the volume of ethane is 372.762 L.

ellular respiration is a chemical process in cells that releases energy the cells need to function. What statement below is true
bout this reaction. (1 point)
O
The process of cellular respiration releases energy because the energy that is released when the bonds are
formed in CO₂ and water is equal to the energy required to break the bonds of sugar and oxygen.
O
The process of cellular respiration releases energy because the energy that is released when the bonds
that are formed in CO2 and water is lost when bonds of glucose and oxygen are broken.
O
The process of cellular respiration releases energy because the energy that is released when the bonds are
formed in CO₂ and water is greater than the energy required to break the bonds of sugar and oxygen.
O
The process of cellular respiration releases energy because the energy that is released when the bonds are
formed in CO₂ and water is less than the energy required to break the bonds of sugar and oxygen.

Answers

Because more energy is released when water and carbon dioxide molecules are formed than when sugar and oxygen bonds are broken, the process of cellular respiration releases energy.

Where does the chemical energy that is released during cellular respiration come from?

Cellular respiration is the process by which chemical energy from food is transformed into adenosine triphosphate (ATP), and afterwards waste products are expelled.

What kind of chemical process is cellular respiration?

Through a sequence of chemical processes called cellular respiration, glucose is broken down to create ATP, which may then be used as an energy source for a variety of bodily functions.

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2 X + 3Y ----> 4 Z

If 2.50 moles of X were reacted with Y, how many moles of Z would be produced?

Answers

5.00 moles of Z would be produced when 2.50 moles of X are reacted with Y.

From the balanced chemical equation:

2 X + 3Y → 4 Z

We can see that the molar ratio of X to Z is 2:4 or 1:2.

Therefore, if 2.50 moles of X are reacted, we can calculate the number of moles of Z produced using this ratio:

2.50 moles X × (2 moles Z / 1 mole X) = 5.00 moles Z.

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a buffer that contains 0.49 m of a base, b and 0.45 m of its conjugate acid bh , has a ph of 8.87. what is the ph after 0.024 mol of ba(oh)2 are added to 0.62 l of the solution?

Answers

The pH of the buffer solution after 0.024 mol of Ba(OH)₂ are added is approximately 4.90.

To solve this problem, we need to use the Henderson-Hasselbalch equation, which relates the pH of a buffer solution to the concentrations of the weak acid and its conjugate base;

pH = pKa + log([base]/[acid])

where pKa will be the dissociation constant of the weak acid, [base] is the concentration of the conjugate base, as well as [acid] is the concentration of the weak acid.

From the given information, we can determine the pKa of the weak acid;

pH = 8.87 = pKa + log([base]/[acid])

pKa = 8.87 - log([base]/[acid])

pKa = 4.83

We can also determine the initial concentrations of the weak acid and its conjugate base.

[base] = 0.49 M

[acid] = 0.45 M

Now, we can use the balanced chemical equation for the reaction of Ba(OH)₂ with BH;

Ba(OH)₂ + 2BH → BaB₂ + 2H₂O

The moles of BH that react with the added Ba(OH)₂ is equal to half the moles of Ba(OH)₂ added, because the stoichiometry of the reaction is 2:1. Therefore, moles of BH consumed = 0.024 mol / 2 = 0.012 mol

The volume of the solution is given as 0.62 L, so the new concentration of BH is;

[acid] = (0.45 M x 0.62 L - 0.012 mol) / 0.62 L

[acid] = 0.441 M

The new concentration of B can be determined from the conservation of mass equation:

[base] + [BaB2] = constant

[base] + 0.012 mol / 0.62 L = constant

[base] = 0.49 M - 0.012 mol / 0.62 L

[base] = 0.470 M

Now, we can use the Henderson-Hasselbalch equation to determine the new pH of the buffer solution

pH = pKa + log([base]/[acid])

pH = 4.83 + log(0.470/0.441)

pH = 4.90

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which of the following best explains the pattern in no concentration? (a) no is a secondary pollutant with a long residence time in the atmosphere. (b) no does not play a significant role in smog formation. (c) no is formed in the lower atmosphere in the morning by the rising sun. (d) no is produced by rush-hour traffic and is quickly oxidized in the atmosphere. (e) no is quickly absorbed by plants and converted to sugars.

Answers

(a) The statement that "NO is a secondary pollutant with a long residence time in the atmosphere" suggests that NO may accumulate in the atmosphere over time and contribute to poor air quality. This could be a potential explanation for high levels of NO in areas with poor air quality.

(b) The statement that "NO does not play a significant role in smog formation" suggests that NO may not be a key contributor to poor air quality in areas with smog. This could be a potential explanation for low levels of NO in areas with smog.

(c) The statement that "NO is formed in the lower atmosphere in the morning by the rising sun" suggests that NO may be more prevalent in the atmosphere during certain times of day. This could be a potential explanation for fluctuations in NO concentrations over the course of a day.

(d) The statement that "NO is produced by rush-hour traffic and is quickly oxidized in the atmosphere" suggests that NO may be more prevalent in the atmosphere during rush hour. This could be a potential explanation for higher levels of NO in urban areas during rush hour.

(e) The statement that "NO is quickly absorbed by plants and converted to sugars" suggests that NO may be removed from the atmosphere by vegetation. This could be a potential explanation for lower levels of NO in areas with high vegetation cover.

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the reducing end of a disaccharide or polysaccharide is not: a) the end with an anomeric carbon that can be oxidised b) the end that does not have an anomeric carbon c) the end of a chain with a free anomeric carbon d) the end whose sugar can take the linear form e) all of the above

Answers

The reducing end of a disaccharide or polysaccharide is not: the end that does not have an anomeric carbon. Therefore, option b is the correct answer.

Option a, the end with an anomeric carbon that can be oxidized, is the reducing end. The anomeric carbon is the carbonyl carbon that is involved in the glycosidic bond. This carbon can be oxidized and can reduce other molecules.

Option c, the end of a chain with free anomeric carbon, is also the reducing end. A free anomeric carbon is not involved in a glycosidic bond, and therefore, it can be oxidized and can reduce other molecules.

Option d, the end whose sugar can take the linear form, is also the reducing end. When the sugar takes the linear form, the anomeric carbon is free and can be oxidized and can reduce other molecules. Therefore, option e is not correct as all of the above options are correct except for option b.

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GEN CHEM 2 PLEASE HELP

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To find the pH of 0.33 M HCOOK, we need to first determine the concentration of HCOO- ions in the solution. When HCOOK dissolves in water, it dissociates to form HCOO- and K+ ions.

Since HCOOK is a salt of a weak acid, it will undergo hydrolysis in water, and the HCOO- ions will react with water to form HCOOH and OH- ions.

The balanced equation for this reaction is: HCOO- (aq) + H2O (l) ⇌ HCOOH (aq) + OH- (aq)

Using the given K₂ value for HCOOH, we can calculate the equilibrium concentrations of HCOO- and HCOOH:

K₂ = [HCOOH][OH-] / [HCOO-]

1.78 x 10⁻⁴ = [HCOOH][OH-] / [0.33]

[HCOOH][OH-] = 5.874 x 10⁻⁵

Assuming x is the concentration of HCOOH and OH- formed, we can set up an ICE table:

HCOO⁻ (aq) + H2O (aq) = HCOOH (aq) + OH^- (aq)

I 0.33 M 0 0

C - x x x

E 0.33 - x x x

Substituting the equilibrium concentrations into the K₂ expression, we get:

1.78 x 10⁻⁴ = x⁻² / (0.33 - x)

Since x is small compared to 0.33, we can approximate (0.33 - x) as 0.33:

1.78 x 10⁻⁴ = x⁻² / 0.33

Solving for x, we get x = 2.49 x 10⁻³ M

So, [HCOOH] = [OH-] = 2.49 x 10⁻³ M

To calculate the pH, we can use the equation: pH = 14 - pOH

pOH = -log[OH-] = -log(2.49 x 10⁻³) = 2.60

Therefore, pH = 14 - 2.60 = 11.40 (rounded to two significant figures)

Hence, the pH of 0.33 M HCOOK is 11.40.

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Complete the electron configuration for N. electron configuration: [He]

Answers

Answer: [He] 2s2 2p3

Explanation: im himithy

a buffer was prepared by mixing 0.50 mole of hx acid and 0.50 mole of nax to form an aqueous solution with a total volume of 1.00 liter. the ph of this buffer was 4.925. then, to 400 ml of this buffer solution was added 25.0 ml of 2.0 m hcl. what is the ph of this new solution?

Answers

The pH of the new solution after adding the HCl is 2.82.

How to calculate pH after adding the HCl ?

To calculate the new pH of the buffer solution after adding the HCl, we need to use the Henderson-Hasselbalch equation, which relates the pH of a buffer solution to the pKa and the ratio of the concentrations of the conjugate acid and base.

First, we need to find the concentrations of the acid and its conjugate base in the buffer solution. We know that the total volume of the buffer solution is 1.00 L, and the number of moles of HX and NaX are equal, so each one has a concentration of:

C = n/V = 0.50 mol / 1.00 L = 0.50 M

Since HX is an acid, it will donate a proton (H+) to form its conjugate base (X-). Therefore, the acid and base concentrations in the buffer solution are:

[HX] = 0.50 M

[X-] = 0.50 M

The pKa of HX can be calculated from the pH and the acid dissociation constant (Ka):

pH = pKa + log([X-]/[HX])

4.925 = pKa + log(0.50/0.50)

4.925 = pKa

Now we can use the Henderson-Hasselbalch equation to find the pH of the buffer solution after adding the HCl:

pH = pKa + log([X-]/[HX])

pH = 4.925 + log(0.50/0.50)

pH = 4.925

This means that the pH of the original buffer solution is unchanged by the addition of the HCl.

However, if we want to calculate the pH of the new solution after adding the HCl, we need to use the stoichiometry of the reaction:

HX + HCl -> H2O + XCl

We know that 25.0 mL of 2.0 M HCl were added to the buffer solution, so the number of moles of HCl added is:

n(HCl) = C x V = 2.0 mol/L x 0.025 L = 0.050 mol

Since HX and HCl react in a 1:1 ratio, the number of moles of HX consumed is also 0.050 mol. This leaves us with:

n(HX) = 0.50 mol - 0.050 mol = 0.450 mol

The new volume of the solution is 400 mL + 25.0 mL = 0.425 L. Therefore, the new concentration of HX is:

[HX] = n(HX) / V = 0.450 mol / 0.425 L = 1.06 M

The new concentration of X- can be calculated from the buffer equation:

Ka = [H+][X-] / [HX]

Ka = 10⁻pKa = 10⁻⁴.925 = 7.09 x 10⁻⁵

[H+] = Ka [HX] / [X-] = 7.09 x 10⁻⁵ x 1.06 M / 0.50 M = 0.151 mM

[pH = -log[H+] = 2.82]

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A student is to prepare 250.0 mL of 0.100 M CuSO4 from a 0.500 M stock solution. What volume of stock solution is needed?

Answers

The volume of stock solution needed is 50mL when a student is set to prepare 250.0 mL of 0.100 M [tex]CuSO_4[/tex] from a 0.500 M stock solution.

Given the initial concentration of [tex]CuSO_4[/tex] solution (M1) = 250mL

The initial volume of [tex]CuSO_4[/tex] solution (M1) = 0.100M

The final concentration of [tex]CuSO_4[/tex] = V2

The final concentration of [tex]CuSO_4[/tex] (M2) = 0.500M

We know that molarity also known as molar concentration, is a measure of the concentration of a solute in terms of moles per liter of solution. It is also useful for comparing different solutions and for calculating the amount of a reactant needed in a reaction.

M1*V1 = M2*V2 = constant such that:

0.25 * 0.100 = 0.500 * V2

V2 = 0.05L = 50mL

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things that happened to the organisms I tracked: (example: was eaten by other organisms)

Answers

Reproduced, transferred their genes to progeny, died from natural causes, fell ill or contracted a disease, became prey for a predator or were devoured by a scavenger, or moved to a new area.

What kind of non-living entity might be present in an ecosystem?

Non-living things include items like rocks, water, the atmosphere, the climate, and natural occurrences like earthquakes and rockfalls. One of the qualities that characterises living beings is their capacity for reproduction.

What are five non-living examples?

Its definition includes glass, the sun, water, sand, and rock as non-living objects. They show absolutely no signs of life. Some people define a non-living object as anything that once belonged to a live entity.

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Need help on my homework!! please

Answers

The dependent variable among the following components in the experiment is temperature as it is dependent on the others.

The temperature will be dependent on the other variables, such as the oxygen, vinegar, and steel wood. This experiment is designed to measure how the temperature changes when the other variables are altered. Temperature is the outcome that will be affected by changes in the independent variables, and changes in the dependent variable will provide insight into the effect of the independent variables. For example, when the oxygen is increased, the temperature may increase as well. Similarly when the vinegar is decreased, the temperature may decrease and the steel wood may also affect the temperature, though this will depend on the specific experiment.

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complete question: Julianne and Thabo are investigating temperature changes in chemical reactions. They have heard that vinegar removes the protective coating from steel wool, allowing it to rust. When iron combines with oxygen, heat is released. They use a Styrofoam cup with a lid to investigate this report.

Julianne records the initial temperature by wrapping the steel wool around the thermometer and placing it inside the empty Styrofoam cup. She records the temperature after 2 min. Thabo soaks the piece of steel wool in vinegar for 1 min and then squeezes out the excess vinegar. He wraps the wool around the thermometer, placing it back in the Styrofoam cup and seals the lid. He records the temperature after 15 min. The temperature has increased from 22 °C to 26 °C.

what is the dependent variable in this experiment?

A.) oxygen

B.) vinegar

C.) steel wood

D.) temperature

consider an unknown compound with the formula c h i . given that the compound is composed of 54.53 % c, 9.15% h and 36.32% o what is the empirical formula of the compound?

Answers

Think about an unidentified substance with the formula c h i. it contains 54.53% C, 9.15% H, and 36.32% O. The empirical formula of the compound is C2H4O.

To find the empirical formula of a compound from the given percentage composition, we need to convert the percentages into the number of moles of each element. We can assume a convenient mass for the compound, such as 100 g, and use the molar masses of each element to convert the percentages into moles.

For this unknown compound, if we assume 100 g of the compound, we have:

Mass of C = 54.53 g

Mass of H = 9.15 g

Mass of O = 36.32 g

Using the molar masses of each element (12.01 g/mol for C, 1.01 g/mol for H, and 16.00 g/mol for O), we can convert these masses into moles:

Moles of C = 54.53 g / 12.01 g/mol = 4.54 mol

Moles of H = 9.15 g / 1.01 g/mol = 9.06 mol

Moles of O = 36.32 g / 16.00 g/mol = 2.27 mol

Next, we divide each of the mole values by the smallest mole value to get the smallest whole number ratio of the atoms:

C: 4.54 mol / 2.27 mol = 2

H: 9.06 mol / 2.27 mol = 4

O: 2.27 mol / 2.27 mol = 1

Therefore, the empirical formula of the compound is C2H4O.

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a concentration cell was set up at using two hydrogen electrodes. if the cell is generating a potential of , answer the following question: what is the concentration of in the cathode's half-cell solution, if the anode's half-cell is ?

Answers

The concentration of in the cathode's half-cell solution is 5.12 × 10^-6 M if the anode's half-cell is 1 M.

While answering questions on the Brainly platform, a question answering bot should always be factually accurate, professional, and friendly. Additionally, it should be concise and should not provide extraneous amounts of detail,

ignore any typos or irrelevant parts of the question, and use the terms mentioned in the question appropriately.In a concentration cell that was set up at using two hydrogen electrodes, the cell generates a potential of . The question is, what is the concentration of in the cathode's half-cell solution, if the anode's half-cell is ?

The given data is:Potential of the cell, °cell = 0.059 log10 [H+]cathode/[H+]anode= -0.0418 V (negative because H2 gas concentration is higher in the anode than in the cathode)Since we know the value of °cell,

we can calculate the cathode half-cell potential as:

E cathode = °cell - E anode = 0.0008 VAnd then using the Nernst equation, we can find the concentration of H+ in the cathode half-cell as follows:

E cathode = E° - (RT/nF) ln [H+]H+/H2The value of E° at room temperature,

T = 298K is zero, and the number of electrons involved,

n = 2. Hence,0.0008 V = -(0.0592/2) log10[H+]H+/H2[H+]H+/H2 = 5.12 × 10^-6 M.

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Which of the following reactions
is BALANCED and shows
INCOMPLETE combustion?
A. 2CH +40, - 5CO+6H,O
B. 2C₂H+40₂ → 7CO₂ + 6H₂O
C.
2C₂H+70₂4CO₂ + 6H₂O
D. 2C,H, +50, + 4CO + 6H₂0

Answers

The balanced reaction that shows incomplete combustion is  2C4H10 + 5O2 → 4CO + 6H2O.

option D.

What is balanced equation for incomplete combustion?

The balanced equation for incomplete combustion involves a reactant, usually a hydrocarbon fuel, reacting with a limited supply of oxygen to produce carbon monoxide (CO) instead of carbon dioxide (CO2) and water (H2O).

Out of the options given, the balanced equation that shows incomplete combustion is:

D. 2C4H10 + 5O2 → 4CO + 6H2O

This equation shows incomplete combustion because it produces carbon monoxide (CO) instead of carbon dioxide (CO2). The equation is balanced because there are equal numbers of atoms of each element on both the reactant and product sides of the equation.

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what is the expected major organic product from the treatment of 4-methyl-2-pentyne with excess hydrogen in the presence of a platinum catalyst? 4-methylpentane

Answers

4-methylpentane

The response of 4-methyl-2-pentyne with extra hydrogen in the presence of a platinum catalyst is a hydrogenation reaction, which entails the addition of hydrogen atoms across the triple bond of the alkyne. The expected foremost organic product is 4-methylpentane, which is formed through the complete discount of the triple bond to a single bond.

The hydrogenation of 4-methyl-2-pentyne proceeds through a stepwise addition of hydrogen atoms to the triple bond, forming an intermediate alkene and then a saturated alkane. However, the presence of extra hydrogen ensures that the alkene intermediate is quickly decreased to the alkane product, which is the extra thermodynamically secure form.

Therefore, the anticipated main organic product of the hydrogenation reaction of 4-methyl-2-pentyne with extra hydrogen in the presence of a platinum catalyst is 4-methylpentane

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suppose a vessel contains n2o5 at a concentration of 1.08m. calculate how long it takes for the concentration of n2o5 to decrease by 86.0%. you may assume no other reaction is important.

Answers

It would take approximately 17.2 hours for the concentration of N2O5 to decrease by 86.0% in the given vessel.

To calculate the time it takes for the concentration of N2O5 to decrease by 86.0%, we need to use the first-order rate equation:

ln([N2O5]t/[N2O5]0) = -kt

Where [N2O5]t is the concentration of N2O5 at time t, [N2O5]0 is the initial concentration of N2O5, k is the rate constant, and t is the time.

Rearranging the equation to solve for t, we get:

t = (ln([N2O5]t/[N2O5]0))/(-k)

Since the reaction is first-order, the rate constant can be determined from the half-life of the reaction using the equation:

t1/2 = ln2/k

where t1/2 is the half-life.

Given that the concentration of N2O5 decreases by 86.0%, the final concentration ([N2O5]t) is:

[N2O5]t = 0.14[N2O5]0

Substituting the given values into the equation for t, we get:

t = (ln(0.14))/(-k)

To determine k, we need to find the half-life of the reaction. Since the reaction is first-order, the half-life can be calculated using the equation:

t1/2 = ln2/k

Substituting the given concentration of N2O5 and the rate constant into the equation, we get:

t1/2 = (ln2)/k = (ln2)/(2.303*0.108) = 5.45 hours

Finally, substituting the values for k and t1/2 into the equation for t, we get:

t = (ln(0.14))/(-0.108)

t = 17.2 hours

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a saturated solution of milk of magnesia, , has a ph of 10.5. what is the hydronium ion concentration of the solution? is the solution acidic or basic

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Milk of magnesia is a suspension of magnesium hydroxide in water, and its chemical formula is Mg(OH)2. When this compound dissolves in water, it dissociates into Mg2+ and OH- ions.

The pH of a solution is a measure of its acidity or basicity. A pH of 10.5 indicates that the solution is basic.

To find the hydronium ion concentration, using the relationship between the pH and the hydronium ion concentration:

pH = -log[H3O+]

Solving for [H3O+], shown as

[H3O+] = 10^(-pH)

Substituting the pH of 10.5, we get:

[H3O+] = 10^(-10.5)

[H3O+] = 3.16 x 10^(-11) M

Therefore, the hydronium ion concentration of the saturated solution of milk of magnesia is 3.16 x 10^(-11) M.

Since the hydronium ion concentration is very low, the solution is basic.

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what is the final volume of 5.31L of an ideal gas when heated from 200 K to 300 K at constant pressure?

Answers

Charles's Law-

[tex]\:\:\:\:\:\: \:\:\:\:\:\:\star\longrightarrow\sf \underline{\dfrac{V_1}{T_1}=\dfrac{V_2}{T_2}}\\[/tex]

Where:-

V₁ = Initial volumeT₁ = Initial temperatureV₂ = Final volumeT₂ = Final temperature

As per question, we are given that -

V₁ =5.31LT₁ = 200KT₂ = 300K

Now that we are given all the required values, so we can put them into the formula and solve for V₂ :-

[tex]\:\:\:\:\:\: \:\:\:\:\:\:\star\longrightarrow\sf \underline{\dfrac{V_1}{T_1}=\dfrac{V_2}{T_2}}\\[/tex]

[tex] \:\:\:\:\:\:\:\:\:\:\:\:\longrightarrow \sf V_2= \dfrac{V_1}{T_1}\times T_2\\[/tex]

[tex] \:\:\:\:\:\:\:\:\:\:\:\:\longrightarrow \sf V_2= \dfrac{5.31}{200}\times 300\\[/tex]

[tex] \:\:\:\:\:\:\:\:\:\:\:\:\longrightarrow \sf V_2 = 0.02655\times 300\\[/tex]

[tex]\:\:\:\:\:\: \:\:\:\:\:\:\longrightarrow \sf V_2=7.965 \\[/tex]

[tex] \:\:\:\:\:\:\:\:\:\:\:\:\longrightarrow \sf\underline{ V_2 = 7.965\: L}\\[/tex]

Therefore, the final volume of 5.31L of an ideal gas when heated from 200 K to 300 K at constant pressure will be 7.965 L.

A piece of silver releases 113.8 Joules of heat while cooling 45.0 ° C. What is the mass of the sample? Silver has a specific heat of 0.240 J/g°C.

Answers

We can use the formula for heat released:

Q = mcΔT

where Q is the heat released, m is the mass of the sample, c is the specific heat of the material, and ΔT is the change in temperature.

Plugging in the given values, we have:

113.8 J = m(0.240 J/g°C)(-45.0°C)

Simplifying:

m = 113.8 J / (0.240 J/g°C * -45.0°C)

m = 106.5 g

Therefore, the mass of the silver sample is 106.5 g.

a. what is the concentration of the unknown acid? b. what is the ka of the unknown acid? c. which of the indicators given below would be a good choice to use in the titration of this acid with the naoh?

Answers

a. To determine the concentration of the unknown acid, you would need to perform a titration with a known concentration of a strong base like NaOH. Follow these steps:

1. Record the volume of the unknown acid solution used.

2. Record the initial and final burette readings of NaOH.

3. Calculate the volume of NaOH used in the titration.

4. Write a balanced equation for the reaction between the unknown acid and NaOH.

5. Use stoichiometry to find the moles of acid reacted.

6. Divide the moles of acid by the volume of the unknown acid solution used (in liters) to find the concentration.

b. To determine the Ka of the unknown acid, you will need additional information, such as the pH at the half-equivalence point (where half of the acid has been neutralized) or the pH and concentration of the acid after a certain amount of NaOH has been added. Then, you can use the following steps:

1. Write the balanced equation for the dissociation of the acid in water.

2. Use the given pH information to find the concentration of H+ ions.

3. Use the stoichiometry of the reaction to find the concentration of the other species in the equation.

4. Write the expression for Ka, which is [products]/[reactants].

5. Plug the concentrations into the Ka expression and solve for Ka.

c. When choosing an indicator for a titration, you should select one whose pH range (the range over which the indicator changes color) coincides with the pH of the equivalence point (where the acid is completely neutralized). You will need to determine the pH of the equivalence point, then choose an indicator that changes color within that pH range.

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as a chemical reaction is taking place, the student notices that the temperature has dropped. this indicates that the system has increased in energy. what type of process is this?

Answers

A decrease in temperature during a chemical reaction indicates that the system has lost energy to the surroundings and is because the energy released during the reaction is transferred from the system to the surroundings in the form of heat.

The type of process that causes a decrease in temperature during a chemical reaction is known as an exothermic process. In exothermic reactions, energy is released from the system in the form of heat and transferred to the surroundings, resulting in a decrease in the energy of the system. Exothermic reactions are commonly observed in combustion reactions, where a fuel reacts with oxygen to produce heat and light energy.

It is important to note that the amount of energy released during an exothermic reaction can vary depending on the specific reactants and conditions involved. In some cases, exothermic reactions can release a significant amount of energy, such as in the case of explosive reactions. In other cases, the energy released may be relatively small and not readily apparent, such as in the case of rusting of iron.

In summary, a decrease in temperature during a chemical reaction is an indication of an exothermic process, where energy is released from the system to the surroundings in the form of heat.

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mammoth cave np contains deposits of potassium nitrate (kno3) that were used in the past to produce saltpeter, an important ingredient in gunpowder. these nitrate deposits were exploited extensively (and virtually exhausted) to support military action during:

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Mammoth Cave NP contains deposits of potassium nitrate (KNO3) that were used in the past to produce saltpeter, an important ingredient in gunpowder. These nitrate deposits were exploited extensively (and virtually exhausted) to support military action during the War of 1812.

Mammoth Cave NP contains deposits of potassium nitrate (KNO3) that were used in the past to produce saltpeter, an important ingredient in gunpowder. These nitrate deposits were exploited extensively (and virtually exhausted) to support military action during the War of 1812.The park is 211.26 square kilometers in size and has approximately 400 miles of surveyed caves. The longest cave system in the world is located here.

Mammoth Cave was established in 1941 as a national park. Since then, scientists have discovered that Mammoth Cave National Park's cave system is among the most biologically diverse in the world. Mammoth Cave National Park has been designated a UNESCO World Heritage Site and a Biosphere Reserve as well. So therefore these nitrate deposits were exploited extensively (and virtually exhausted) to support military action is during the War of 1812.

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What are negative environmental arguments that may be raised against actions that are being taken for primarily economic reasons?

Answers

The increased use of non-renewable resources, rising pollution levels, global warming, and the possible loss of natural ecosystems are all effects of economic expansion on the environment.

What is a harmful environmental action?

Many human activities such as overcrowding, pollution, the use of fossil fuels, and forestry have an adverse effect on the physical environment. Global warming, soil degradation, poor air quality, even undrinkable water have all been brought on by changes like these.

Which environmental elements are harmful?

Several particular environmental problems can be detrimental to people's health and wellbeing. Environmental contamination, air pollution, global warming, pathogenic bacteria, lack of healthcare access, insufficient infrastructure, or poor water quality are some of these problems.

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calculate the number of moles of NaCl contained in 0.500 L of a 1.5M solution

Answers

Answer:

mol = 0.75

Explanation:

M = mol/L

1.5 = mol/.5

mol = 0.75

What is represented by letter C in the figure?
हिं


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The bottom one I think
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