What is the mass of 1.50 mol of sodium, na?

Answers

Answer 1

To get the answer, you must know first the formula:


We know that moles = mass divided by molecular weight


So to get the mass, we need to alter the original formula, so


mass of sodium = 1.5 moles x atomic weight of Na


so what is the atomic weight of Sodium? It is 22.989769 u.


so the mass of sodium = 1.5 moles x 22.989769 u = 34.4846535


Related Questions

Red blood cells are placed in a solution and neither hemolysis nor crenation occurs. therefore the solution is

Answers

The answer is isotonic solution. These are solutions where the solute concentration in the solution and inside the cells are levelled and consequently water flows consistently. When red blood cells are positioned in an isotonic solution the cells would always stay the same.

Read the clues. I have scales. My skin is dry.I breathe with lungs. I lay tough,leathery eggs. what vertebrate what am I ? A. reptile B. amphibian C. mammal D. bird help me plz ASAP

Answers

a vertebrate, such as a lizard, that has dry scaly skin and lays eggs that have a leathery shell so your answer will be A. reptile

Compared To 620 nm photon, a 760 nm photon has ?

Answers

There can be two perspectives to use when answering this question. First, let's interpret it through the wavelength. The unit nm is a unit of wavelength. This is the distance from one crest to another of a wave function. Thus, the 760 nm photon has a wider crest than the 620 nm.

Second, let's interpret through frequency. This is the rate wherein one cycle has been completed, which is equivalent to one wavelength. So, the longer the wavelength, the lower is its frequency and vice versa. Thus, the 760 nm photon has a lower frequency than the 620 nm photon.
Final answer:

A 760 nm photon has less energy than a 620 nm photon because energy and wavelength of photons are inversely related. Longer wavelengths signify lower energy, so a 760 nm photon has less energy.

Explanation:

Compared to a 620 nm photon, a 760 nm photon has lesser energy. This is because energy and wavelength of photons are inversely related, and thus, a longer wavelength (760 nm) signifies lower energy. Wavelength and energy are related by the equation E=hc/λ, where E is energy, h is Planck's constant, c is the speed of light, and λ is the wavelength. If the λ value increases, the E value decreases, assuming the values of h and c remain constant.

For example, a red photon (longer wavelength around 700 nm) carries less energy compared to a blue photon (shorter wavelength around 420 nm). This concept also applies to other types of electromagnetic radiation such as UV or infrared light, going beyond the visible light spectrum (380 to 720 nm). In essence, the longer the wavelength, the less energy the photon has, which is why a 760 nm photon has less energy than a 620 nm.

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238u undergoes radioactive decay to 234th. how many protons, electrons, and neutrons are gained or lost by the 238u atom during this process?

Answers

U^235Number of protons = 92 pNumber of electrons = 92 eNumber of neutrons = 235 – 92 = 143n
U^238Number of protons = 92pNumber of electrons = 92eNumber of neutrons = 238 – 92 = 146n
Electron configuration of U atom U = 92 U = [Rn] 5f^6 6d^0 7s^0 U = [Rn] 5f^36d^17s^2, 7s is completely filled and others are less than half filled. 
(_92^238)U  Decays to (_90^234)ThIt loses 2 protons, 2 electrons and loses 2 neutrons Th = [Rn] 6d^2 7s^2 There is no electron in 5f subshell and 6d contains 2e^-, 7s completely filled

Why haven't scientists been able to study atoms directly?

Answers

Unfortunately, our progress has been hindered by technological limits. Atoms are unimaginably tiny, beyond our comprehension.

Just to give you some context:

On average, one single human cell, a microscopic organism, contains about 100 trillion atoms.

Solve the following and express each answer in scientific notation and to the correct number of significant figures.
A). (5.3 x 10^4) + (1.3 x 10^4)
B). (7.2 x 10^-4) /(1.8 x 10^3
C). 10^4 x 10^-3 x 10^6
D). (9.12 x 10^-1) - (4.7 x10^-2
E). (5.4 x 10^4) x (3.5 x 10^9)

Answers

Explanation:

Scientific notation is defined as the representation of the numbers that are too big or too small and are represented in the form of decimal with one digit before the decimal point times 10 raise to the power.

Significant figures from scientific notation:

Count the digits in number coming before the 10 raise to the power.Zero after decimal are significant.Zero before decimal are not significant.Zero in between two digits are significant

A)[tex](5.3\times 10^4) + (1.3\times 10^4)[/tex]

[tex]10^4(5.3+1.3)=10^4(6.6)=6.6\times 10^4[/tex]

Number of significant figures = 2

B)[tex]\frac{(7.2\times 10^-4)}{(1.8\times 10^3)}[/tex]

[tex]\frac{7.2\times 10^{-4-3}}{1.8}=4.0\times 10^{-7}[/tex]

Number of significant figures = 2

C).[tex] 10^4\times 10^{-3}\times 10^6 [/tex]

[tex]10^{4-3+6}=10^7=1\times 10^7[/tex]

Number of significant figures = 1

D). [tex](9.12\times 10^{-1}) - (4.7\times 10^{-2})[/tex]

[tex]10^{-1}(9.12-0.47)=8.65\times 10^{-1}[/tex]

Number of significant figures = 3

E). [tex](5.4\times 10^4)\times (3.5\times 10^9)[/tex]

[tex]5.4\times 3.5\times 10^{4+9}=18.9\times 10^{13}=1.89\times 10^{14}[/tex]

Number of significant figures = 3

Scientific notation always have a decimal part multiplied by 10 raised to the exponent of a positive or negative integer.

a) [tex](5.3 x 10^4) + (1.3 x 10^4) = 6.6 * 10^4[/tex]

b) [tex](7.2 x 10^-4) /(1.8 x 10^3) = 4.0 * 10^-7[/tex]

c) [tex]10^4 x 10^-3 x 10^6 = 1.0 * 10^7[/tex]

d) [tex](9.12 x 10^-1) - (4.7 x10^-2) = 8.65 * 10^-1[/tex]

e) [tex](5.4 x 10^4) x (3.5 x 10^9) = 2.1 * 10^14[/tex]

When working on multiplication and division of numbers in scientific notation, the laws of indices are applied as shown in the results above.

For addition and subtraction, the both numbers in scientific notation must be made to have a common exponent before the operation can be carried out successfully.

Also note that the correct number of significant figure must be maintained in the results obtained from each operation.

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What elements can the compound ca(no3)2 be decomposed into?

Answers

As can be seen from the chemical formula, Ca(No3)2 is made up of Calcium, Nitrogen and oxygen. If the appropriate amount of energy is used on the compound, the bonds will disintegrate and the compound will decompose into the individual elements of Calcium, Nitrogen and oxygen

An unknown element is shiny and is found to be a good conductor of electricity, what other properties would you predict for it

Answers

That it is hard, and a metal? 

A tiny pencil mark just visible to the naked eye contains about 3 × 1017 atoms of carbon. what is the mass of this pencil mark in grams?

Answers

The number of carbon atoms in the pencil mark is 3X1017 atoms of carbon The atomic weight of carbon is 12.01 amu, so 12.01 g of carbon contains 6.022X1023 atoms. Thus equation: 12.01 g carbon/ 6.022 X 1023 atoms (3X1017 atoms) (12.01 g carbon/ 6.022X1023 atoms) - the atoms cancel out (3X1017) (12.01g carbon/6.022X1023) divide and multiply = 6x10-6g carbon The mass of this pencil mark in grams is 6x10-6g carbon
Final answer:

The mass of the pencil mark can be calculated using the formula: M = V x density of atoms x mass per atom. Given the volume of the pencil mark and the density and mass per atom of carbon, the mass of the pencil mark can be determined. The mass of the pencil mark is approximately 3.5 x 10^39 kg.

Explanation:

The mass of the pencil mark can be calculated using the formula:

M = V x density of atoms x mass per atom

Given that the volume of the pencil mark is approximately 3 x 10-17 cm3 and the density and mass per atom of carbon are known, the mass of the pencil mark can be determined. Using the provided formula, the mass of the pencil mark is approximately 3.5 x 1039 kg.

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Examine the equation.
C3H8(g)+5O2(g)→3CO2(g)+4H2O(l)
In the equation shown, what is the number 4 an example of?

reactant

chemical formula

coefficient

product

Answers

4 is a coefficient of the formula

Answer:

Coefficient

Explanation:

We can explain this discarting options too. Now, let's write again the chemical equation;

C3H8(g)+5O2(g)→3CO2(g)+4H2O(l)

In a chemical equation, we have two sides. The left side we have the reactants of the reaction, these can be elements or compounds that reacts between each other, to produce another compound or substance. This compounds or elements are on the right side of the reaction. This side we have the products of the reaction of reactants.

Now, as in every situation of life, we need a balance of reactants and products, so, the only way to balance a chemical equation is by putting numbers behind every compound of the reactant and/or products to equal the number of atoms on each side. So if in the reactants we have 3 atoms of C, in the products we need to have the same 3 atoms.

Based on the above explanation, we can say that the number 4 is behind the H2O. This compound is on the side of products, but the number only, do not represent a product, so this option can be discarted.

A reactant cannot be either, cause it's not on the side of reactant.

Chemical formula, could be, if the number were as subscript, but it's not the case, and the chemical formula is composed of symbols.

Finally, as the number that we put behind the compounds work to balance the equation, the only function that these numbers have here, is to be coefficients of the reactions, and furthermore, it will work as mole.

So the correct option is the third one, Coefficient.

which element belongs to the alkali metal family

Answers

The Alkali metals are Lithium, Sodium, Potassium, Rubidium, Caesium, and Francium. There may be Hydrogen as well, it really depends if the teacher considers it a metal. The Alkalis are the far left column on the periodic table. If you don't have a paper copy, www.ptable.com is a good resource.

The Alkali metals includes

Lithium, Sodium Potassium Rubidium CaesiumFrancium.  

What are alkali metal?

The alkali metals are the metal which react with water forms alkalies that is strong bases capable of neutralizing acids.

The alkali metals have the high thermal and electrical conductivity, lustre, ductility, and malleability all are the characteristic of metals. Each alkali metal atom contains a single electron in its outermost shell. This valence electron is much more weakly bound than those in inner shells.

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What factors does the gravitational potential energy of an object depend on

Answers

So, it follows from the equation above that the mass, gravitational pull, and height of a body all affect its potential energy.

What three factors determine gravitational potential energy?

Three factors affect an object's gravitational potential energy: the object's mass, its height above the Earth's surface, and the gravitational force's strength, which is measured by a quantity known as the acceleration caused by gravity.

What are the two main factors that affect gravity?

Gravity is affected by the size of the items and the distance between them. A measure of an object's quantity of material is its mass. An object with more mass falls faster than one with less mass. Even as the separation between two objects widens, the pull of gravity lessens.

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Final answer:

Gravitational potential energy depends on an object's height, mass, and the strength of the local gravitational field, typically simplified to Ug = mgy where 'g' is standard gravity (9.8 m/s²) near the Earth's surface.

Explanation:

The gravitational potential energy of an object depends on several factors, including its height above a reference level, its mass, and the strength of the gravitational field it is within. For example, gravitational potential energy equation near Earth can be expressed as Ug = mgy.

Where 'm' stands for the object's mass, 'g' represents the acceleration due to gravity, which is approximately 9.8 m/s² near Earth's surface, and 'y' is the object's height above the reference level. Moreover, the stronger the gravitational field (which depends on the mass of the object creating the field and the distance to its center), the greater the potential energy of the object will be at a given height.

This principal concept holds true for local approximations where the change in distance relative to the center of gravity is small, allowing the simplification that 'g' remains constant. However, if an object is elevated to a significant fraction of the Earth’s radius, then 'g' would decrease as the distance from the Earth's center increases, making the calculation more complex.

An atom is determined to contain 34 protons, 36 electrons, and 34 neutrons. what are the mass number and charge of this atom or ion?

Answers

mass number: 68, charge: -2 
mass is 68 and the charge is -2

A sample of oxygen gas was collected via water displacement. since the oxygen was collected via water displacement, the sample is saturated with water vapor. if the total pressure of the mixture at 26.4 °c is 765 torr, what is the partial pressure of oxygen? the vapor pressure of water at 26.4 °c is 25.81 mm hg.

Answers

To calculate the partial pressure of oxygen we need to make reference to this formula from Dalton's law of partial pressures: P(total) = P(gas1) + P(gas2). In our question, P(total) = 765 torr which is equivalent to 765 mm hg. Also P(gas1) is vapour pressure which is 25.81. To obtain the partial pressure of oxygen , we subtract P(gas1) from P(total) i.e P(gas2)= P(total)- P(gas2). Therefore: P(gas2)= 765mm hg-25.81mm hg P(gas2)=739.19 mm hg. This implies that partial pressure of oxygen = 739.19 mm hg

Which of the following measurements represents the most matter?
A. 0.033 kg
B. 0.33 hg
C. 330 g
D. 3300 cg

Answers

Answer: C) 330 g

Explanation: Since all the masses are given in different units, it's good to make all of them to have same unit. Let's say we convert all of them to grams.

A) kg stands for kilogram and 1 kg = 1000 g

So, [tex]0.033kg(\frac{1000g}{1kg})[/tex]

= 33 g

B) hg stands for hactogram and 1 hg = 100 g

So, [tex]0.33hg(\frac{100g}{1hg})[/tex]

= 33 g

C) 330 g

D) cg stands for centigram and 1 cg = 0.01 g

So, [tex]3300cg(\frac{0.01g}{1cg})[/tex]

= 33 g

Looking at all the choices, choice A, B and D represent equal amount of matter that is 33 g where as choice C represents 330 g of matter.

Hence, the correct choice is C) 330 g.

Calculate the enthalpy of combustion, δh∘comb, for c6h14. you'll first need to determine the balanced chemical equation for the combustion of c6h14. express your answer to four significant figures and include the appropriate units.

Answers

Final answer:

The enthalpy of combustion of C6H14 can be calculated using the enthalpies of formation of the products and reactants as per Hess's law, resulting in an approximate value of -4163 kJ/mol.

Explanation:

To calculate the enthalpy of combustion, ΔH°comb, for C6H14, we first need to write and balance the combustion reaction for C6H14. The balanced chemical equation for the combustion of C6H14 in oxygen is:

C6H14 (l) + 19/2 O2 (g) -> 6 CO2 (g) + 7 H2O (l)

Going by Hess's law, the enthalpy change of the whole process will be equivalent to the sum of the enthalpy changes of each step. The enthalpies of formation of CO2 and H2O are -393.5 kJ/mol and -285.8 kJ/mol respectively, while the enthalpy of formation of C6H14 is -200.0 kJ/mol from literature. Using the balanced equation, we can calculate the ΔH°comb:

ΔHC°comb = ΣΔHf° (products) - ΣΔHf° (reactants)

So,

ΔHC°comb = [(6×-393.5) + (7×-285.8)] - [-200.0]

2hich gives the enthalpy of combustion of C6H14 to be approximately -4163 kJ/mol, to four significant figures.

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Is gasoline an element, compound, heterogeneous mixture or a homogeneous?

Answers

Pure substances can be either elements or compounds. Mixtures can be eitherhomogeneous or heterogeneous. ... Sometimes it can be difficult to tell the difference between a compound and a homogeneous mixture based solely on appearance. Consider gasoline.
Final answer:

Gasoline is a heterogeneous mixture composed of different substances that are not uniformly distributed throughout. It is also a compound made up of different types of molecules bonded together.

Explanation:

Gasoline is a liquid mixture of continuous- and branched-chain alkanes, each containing from five to nine carbon atoms, plus various additives to improve its performance as a fuel. It is considered a heterogeneous mixture because it contains different substances that are not uniformly distributed throughout. Furthermore, gasoline is a compound as it is composed of different types of molecules bonded together.

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Which symbol represents an alkaline earth element ? A. Na B. Mg C. Ne D. Ag

Answers

D. hope this helps your question


The modern periodic table is divided into four blocks based on the nature of the orbital in which the differentiating electron is placed. The alkaline earth element is 'Mg'. The correct option is B.

What is Alkaline earth metal?

The elements in which the differentiating electron enters into an s - orbital of the valence shell (n) are called 's' block elements. The elements of group 1 are called alkali metals whereas the elements of group 2 are known as alkaline earth metals.

The general outer electronic configuration of alkali elements is ns¹ and that of  alkaline earth elements is ns². They are metals and are good conductors of heat and electricity. They show metallic lustre.

The 's' block elements generally form compounds with highly electronegative elements of groups 16 and 17. They are very reactive.

Thus the correct option is B.

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What energy does satellite use

Answers

The Sun is the main energy source for satellites, which is why all satellites have solar panel arrays mounted on them. Each array contains thousands of small solar cells which are made of silicon – a material that allows sunlight to be turned into electrical current.

The elements cu, o, la, y, ba, tl, and bi are all found in high-temperature ceramic superconductors. write the expected electron configuration for these atoms. (type your answer in noble gas notation using the format [ar] 4s2 3d10 4p3 for [ar] 4s2 3d10 4p3.)

Answers

Final answer:

The electron configurations for copper (Cu), oxygen (O), lanthanum (La), yttrium (Y), barium (Ba), thallium (Tl), and bismuth (Bi) when present in high-temperature ceramic superconductors are detailed. These configurations play an essential role in the chemical reactions and physical properties of the elements, with emphasis on the valence electrons.

Explanation:

The electron configurations for the elements copper (Cu), oxygen (O), lanthanum (La), yttrium (Y), barium (Ba), thallium (Tl), and bismuth (Bi) in high-temperature ceramic superconductors can be represented as below:

Copper (Cu): [Ar]4s2 3d9 Oxygen (O): [He]2s2 2p4 Lanthanum (La): [Xe]6s2 5d1 Yttrium (Y): [Kr]5s2 4d1 Barium (Ba): [Xe]6s2 Thallium (Tl):[Xe]6s2 4f14 5d10 6p1 Bismuth (Bi):[Xe]6s2 4f14 5d10 6p3

These elements in ceramic superconductors gain extra stability from either half-filled or completely filled sub-shells. In the case of copper (Cu), an electron moves from the 4s to the 3d orbital to gain the extra stability of filled 3d sub-shell. The electron configurations determine the valence electrons, which play a vital role in chemical reactions as well as some physical properties of the elements.

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Final answer:

Electron configurations for Cu, O, La, Y, Ba, Tl, and Bi in noble gas notation provide insights into their roles in high-temperature superconductors, demonstrating how their electron arrangements affect superconductivity.

Explanation:

Writing the electron configurations for the elements Cu, O, La, Y, Ba, Tl, and Bi in noble gas notation provides insight into their potential behavior in high-temperature ceramic superconductors. This approach simplifies understanding electron arrangements by referencing the closest noble gas with a lower atomic number and adding the subsequent electrons according to the order defined by quantum mechanics.

Copper (Cu): [Ar] 4s² 3d⁹Oxygen (O): [He] 2s² 2p⁴Lanthanum (La): [Xe] 6s² 5d¹Yttrium (Y): [Kr] 5s² 4d¹Barium (Ba): [Xe] 6s²Thallium (Tl): [Xe] 6s² 4f¹⁴ 5d¹⁰ 6p¹Bismuth (Bi): [Xe] 6s² 4f¹⁴ 5d¹⁰ 6p³

Each element's electron configuration is key to understanding its chemical properties and reactivity, especially in the context of high-temperature superconductivity, where electron mobility and interaction play a critical role.

Which type of chemical protective clothing (cpc) protects the wearer against chemical vapors or gases?

Answers

The CPC equipment ensures the safety and health of workers. Management and employees must be aware of the hazards: the type of chemical, the physical state (liquid, solid or gas), and the physiological effect (toxic, carcinogen, asphyxiant, corrosive, etc.).
Vapor-protective clothing is type of chemical protective clothing (CPC) that protects the wearer against chemical vapors or gases.


Which organic compound is correctly matched with the subunit that composes it?

Answers

It is the Starch-glucose. Glucose is a solitary sugar particle that your body can retain specifically in the digestive system. Sucrose and starches are starches shaped by at least two sugars reinforced together. The sugars in sucrose and starch must be separated into glucose particles in the gastrointestinal tract before your digestive organs can assimilate them.

Describe what makes a diamond a mineral

Answers

Diamond is rare and naturally-occurring mineral composed of carbon.

Answer:

Diamond is rare and naturally-occurring mineral composed of carbon.

Explanation:

Which type of bonds or interactions between atoms is the strongest?

Answers

The answer is: Convalent. i think

The nucleus of an atom is dense and positively charged. What was observed when positively charged particles were radiated onto a gold atom during Rutherford's experiment because of this?

Negative charges were concentrated at the center of the atom.
Particles that struck the center of the atom were repelled.
Particles that struck the edges of the atom were repelled.
Positive charges were distributed all over the atom.

Answers

Not sure but i think c Particles that struck the edges.

My best guess

Answer:

Particles that struck the center of the atom were repelled.

Explanation:

In 1911, New Zealand physicist Ernest Rutherford carried out an experiment in order to deepen his knowledge of the atomic model hitherto adopted, which was that of Thomson; in which the atom would be a sphere of positive, non-massive electrical charge, encrusted with (negative) electrons, so that its total electrical charge would be zero.

To carry out such an experiment he bombed a very thin gold leaf (thickness of approximately 10-4 mm), through a beam of alpha particles (α), coming from a sample of polonium. The polonium was inside a lead block, with an orifice, through which only the emissions of alpha particles would be allowed out.

In addition, lead plates with holes were placed in their centers, which would orient the beam towards the gold blade. And, finally, a bulkhead covered with zinc sulfide, which is a fluorescent substance, was placed behind the slide, where it was possible to visualize the path taken by the alpha particles.

At the end of this experiment, Rutherford noticed that most of the alpha particles passed through the slide, did not deflect or retreat. Some alpha particles deflected, and very few receded. In addition, the particles that reached the center of the atom were repelled.

Based on these data, Rutherford concluded that, contrary to what Dalton thought, the atom could not be massive. But in reality, much of the atom would be empty and it would contain a very small, dense and positive nucleus.

What is the enthalpy change (in kj) of a chemical reaction that raises the temperature of 250.0 ml of solution having a density of 1.25 g/ml by 9.20 ∘c? (the specific heat of the solution is 3.74 j/g⋅k.)?

Answers

The enthalpy change (in kJ) for the given solution is [tex]\boxed{{\text{329}}{\text{.82 kJ}}}[/tex]

Further explanation:

The property is a unique feature of the substance that differentiates it from the other substances. It is classified into two types:

1. Intensive properties:

These are the properties that depend on the nature of the substance. These don't depend on the size of the system. Their values remain unaltered even if the system is further divided into a number of subsystems. Temperature, refractive index, concentration, pressure, and density are some of the examples of intensive properties.

2. Extensive properties:

These are the properties that depend on the amount of the substance. These are additive in nature when a single system is divided into many subsystems. Mass, enthalpy, volume, energy, size, weight, and length are some of the examples of extensive properties.

Enthalpy:

It is a thermodynamic property that is defined as the sum of internal energy and product of pressure (P) and volume (V) of the system. It is a state function, an extensive property, and is independent of the path followed by the system while moving from initial to the final point. The total enthalpy of the system cannot be measured directly so its change [tex]\left({\Delta{\text{H}}}\right)[/tex] is usually measured.

The enthalpy change [tex]\left({\Delta{\text{H}}}\right)[/tex]can have two values:

Case I: If the reaction is endothermic, more energy needs to be supplied to the system than that released by it. So [tex]\Delta{\text{H}}[/tex] comes out to be positive.

Case II: If the reaction is exothermic, more energy is released by the system than that supplied to it. So [tex]\Delta{\text{H}}[/tex] comes out to be negative.

Specific heat is the amount of heat required to increase the temperature of any substance per unit mass. Specific heat capacity is also known as or mass specific heat. Its SI unit is Joule (J).

The formula to calculate the heat energy of any substance is as follows:

[tex]{\text{Q}}={mc\Delta T}}[/tex]                       …… (1)

Here,

Q is the amount of heat transferred.

m is the mass of the substance.

c is the specific heat of the substance.

[tex]{\Delta T}}[/tex] is the change in temperature of the system.

The formula to calculate the density of the solution is as follows:

[tex]{\text{Density of solution}}=\frac{{{\text{Mass of solution}}}}{{{\text{Volume of solution}}}}[/tex]               ….. (2)

Rearrange equation (2) for the mass of the solution.

[tex]{\text{Mass of solution}}=\left({{\text{Density of solution}}}\right)\left({{\text{Volume of solution}}}\right)[/tex]        …… (3)

The density of the solution is 1.25 g/mL.

The volume of solution is 250 mL.

Substitute these values in equation (3).

[tex]\begin{gathered}{\text{Mass of solution}}=\left({\frac{{{\text{1}}{\text{.25 g}}}}{{1\;{\text{mL}}}}}\right)\left({{\text{250 mL}}}\right)\\={\text{312}}{\text{.5 g}}\\\end{gathered}[/tex]

The temperature change [tex]\left({\Delta{\text{T}}}\right)[/tex] is to be converted to K. The conversion factor for this is,

[tex]{\text{0 }}^\circ{\text{C}}={\text{273 K}}[/tex]

So [tex]{\Delta T}}[/tex] can be calculated as follows:

[tex]\begin{gathered}{\text{Temperature}}\left({\text{K}}\right)=\left( {9.2+273}\right)\;{\text{K}}\\=282.2\;{\text{K}}\\\end{gathered}[/tex]

The mass of the solution is 312.5 g.

The specific heat of the solution is [tex]3.74\;{\text{J/g K}}[/tex].

[tex]{\Delta T}}[/tex] of the system is 282.2 K.

Substitute these values in equation (1).

[tex]\begin{gathered}{\text{Q}}=\left({{\text{312}}{\text{.5 g}}}\right)\left({\frac{{3.74\;{\text{J}}}}{{\left({{\text{1 g}}}\right)\left({{\text{1 K}}}\right)}}}\right)\left({282.2\;{\text{K}}}\right)\\=329821.25\;{\text{J}}\\\end{gathered}[/tex]

The enthalpy change is to be converted into kJ. The conversion factor for this is,

[tex]{\text{1 J}}={10^{-3}}\;{\text{kJ}}[/tex]

So the enthalpy change can be calculated as follows:

[tex]\begin{gathered}{\text{Q}}=\left({329821.25\;{\text{J}}}\right)\left({\frac{{{{10}^{-3}}\;{\text{kJ}}}}{{{\text{1 J}}}}}\right)\\=329.82125\;{\text{kJ}}\\\approx{\text{329}}{\text{.82 kJ}}\\\end{gathered}[/tex]

Therefore, the enthalpy change of the given reaction is 329.82 kJ.

Learn more:

1. What is the equilibrium constant of pure water at  ? https://brainly.com/question/3467841

2. 1. Calculate   for the reaction using Hess law: https://brainly.com/question/11293201

Answer details:

Grade: Senior School

Subject: Chemistry

Chapter: Thermodynamics

Keywords: intensive, extensive, enthalpy, mass of solution, amount of heat transferred, Q, m, c, given mass, molar mass, enthalpy change, 329.82 kJ, enthalpy change, density of solution, mass of solution, volume of solution, conversion factor, 250 mL, 1.25 g/mL.

Final answer:

To find the enthalpy change of the chemical reaction, we use the equation q = mcΔT, where q is the heat absorbed or released, m is the mass of the solution, c is the specific heat of the solution, and ΔT is the change in temperature. Substituting the given values into the equation, we find that the enthalpy change is 10.94 kJ.

Explanation:

To calculate the enthalpy change of the chemical reaction, we need to use the equation q = mcΔT, where q represents the heat absorbed or released, m is the mass of the solution, c is the specific heat of the solution, and ΔT is the change in temperature.

First, we need to find the mass of the solution. The density of the solution is given as 1.25 g/mL, so for 250.0 mL of solution, the mass would be 250.0 mL * 1.25 g/mL = 312.5 g.

Next, we can substitute the values into the equation: q = (312.5 g) * (3.74 J/g°C) * (9.20 °C). To convert the result from joules to kilojoules, we divide the answer by 1000.

Therefore, the enthalpy change of the chemical reaction is 10.94 kJ.

Methane gas and chlorine gas react to form hydrogen chloride gas and carbon tetrachloride gas. what volume of hydrogen chloride would be produced by this reaction if 1.69 ml of methane were consumed

Answers

The reaction between methane gas and chlorine gas to form hydrogen chloride and carbon tetrachloride, all in their gaseous form can be expressed through the chemical reaction below.

        CH₄ + 4Cl₂ --> 4HCl + CCl₄

Let us assume that all the involved gases behaves ideally such that each mole of the gas is equal to 22.4 L. 

Through proper dimensional analysis, the volume of the produced hydrogen chloride is calculated,
    V(HCl) = (1.69 mL CH₄)(1 L CH₄/ 1000 mL CH₄)(1 mol CH₄/22.4 L CH₄)(4 mols HCl/1 mol CH₄)(22.4 L HCl/1 mol HCl)(1000 mL/1 L)
    

    V(HCl) = 6.76 mL

ANSWER: 6.76 mL


Final answer:

In the reaction between methane and chlorine, each volume of methane produces 4 volumes of hydrogen chloride. If 1.69 ml of methane were consumed, 6.76 ml of hydrogen chloride would be produced.

Explanation:

This question involves the concept of stoichiometry in chemistry. In the chemical reaction between methane (CH4) and chlorine (Cl2), the balanced equation is CH4 + 4Cl2 → 4HCl + CCl4. This equation reveals that 1 volume of methane reacts with 4 volumes of chlorine to produce 4 volumes of hydrogen chloride and 1 volume of carbon tetrachloride. Hence, if 1.69 ml of methane were consumed, 1.69 ml x 4 = 6.76 ml of hydrogen chloride would be produced.

Learn more about Stoichiometry here:

https://brainly.com/question/30215297

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At saturation, the further addition of water vapor or a decrease in temperature results in __________

Answers

The answer in the space provided is active condensation. Active condensation will likely occur if in saturation, further addition of water vapor has occurred or there is a presence of decrease in temperature. Condensation is a process that occurs when physical state is being changes such example of this when gas is formed into a liquid.

An atom in which an electron has moved to a higher energy level is in a(n) ________________ state

Answers

an atom in which an electron has moved to a higher energy level is in an excited state.
An atom in which an electron has moved to a higher energy level is in an excited state

hope this helps

What does a subscript indicate in a chemical formula?

Answers

Chemical formulas are used to describe the types of atoms and their numbers in an element or compound. The atoms of each element are represented by one or two different letters. When more than one atom of a specific element is found in a molecule, a subscript is used to indicate this in the chemical formula.

Explanation:

A subscript is a number that is placed below an alphabet on the bottom right side.

For example, for [tex]H_{2}[/tex] molecule 2 is the subscript.

A subscript indicates the number of atoms present in a substance or molecule.

For example, in [tex]H_{2}SO_{4}[/tex] the subscripts indicate that there are two hydrogen atoms, one sulfur atom, and four oxygen atoms.

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