Which type of particle retains the identity of an element during a chemical reaction? a) electron
b) proton
c) atom

Answers

Answer 1
The answer is C. atom. An atom is the smallest fraction of a chemical element that can ever exit. An atom consists three particles which are the protons neutrons and electrons. Electrons are found around the center of the atom. The protons and neutrons are found in the center of the atom

Related Questions

Which is true of ionic compounds? They have characteristically low melting and low boiling points. They are electrically charged, either positive or negative. They contain no charged particles. They form hard, brittle crystals with characteristic shapes.

Answers

The answer is they are electrically charged either positive or negative.
Ionic compounds will be compounds comprised of particles. These particles are atoms that pick up or lose electrons, giving them a net positive or negative charge. Metals have a tendency to lose electrons, so they progress toward becoming cations and have a net positive charge.

Based on what you read on the Marie Curie and the Science of Radioactivity website, name the scientists who shared the Nobel Prize in Physics in 1903 and describe their contributions that were recognized by the award.

Answers

The award was divided to 3 pioneers of physics: Anotine Henri Bequerel, Pierre Curie and his wife Marie Curie. Bequerel was the first man to notice radioactivity since radioactive materials change the film of a camera. He noticed that uranium was radioactive. The Curie couple took his research one step further and examined many minerals and materials for radioactivity and with their work they managed to isolate new radioactive elements, radium and polonium.

Conservation of Matter states that the reactants have to equal the _______. products enablers 2. Products and reactants in a balanced chemical reaction have the same number of _______ of each element. atoms molecules 3. If the equation on the board had shown 3 atoms of carbon on the reactants side, how many atoms of carbon would need to be represented on the products is

Answers

Answer:

1) Conservation of Matter states that the reactants have to equal the products.

2) Products and reactants in a balanced chemical reaction have the same number of atoms of each element.

3) Three (3) atoms of carbon would need to be represented.

Explanation:Number of atoms on the left and on the right side of the balanced chemical reaction is the same, for example: Mg + 2HCl → H₂ + MgCl₂. There are two hydrogen atoms, two chlorine atoms and one magnesium atom on both side of chemical reaction.

1. Conservation of Matter states that the reactants have to equal the products.

2. Products and reactants in a balanced chemical reaction have the same number of atoms of each element.

3. If the equation on the board had shown 3 atoms of carbon on the reactants side, then there would need to be 3 atoms of carbon on the products side.

Conservation of Matter is a law of science that states that matter cannot be created or destroyed. This means that the total mass of the reactants in a chemical reaction must equal the total mass of the products.

Atoms are the basic unit of matter. A molecule is a group of atoms that are bonded together.

In a balanced chemical equation, the number of atoms of each element is the same on the reactant side and the product side. This is because the law of conservation of matter must be obeyed.

So, if the equation on the board had shown 3 atoms of carbon on the reactants side, then there would need to be 3 atoms of carbon on the products side in order for the equation to be balanced.

Here is an example of a balanced chemical equation:

2 H₂ + O₂ → 2 H₂O

In this equation, there are 2 hydrogen atoms on the reactant side and 2 hydrogen atoms on the product side. There is also 1 oxygen atom on the reactant side and 1 oxygen atom on the product side. This is a balanced equation because the law of conservation of matter is obeyed.

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Identify which method of thermal energy transfer would be fastest through a vacuum, which would be fastest through a gas, and which would be fastest through a solid.142

Answers

Hello!

1)Through vacuum, the fastest method of thermal energy transfer would be radiation. This kind of thermal energy transfer consists in energy carried out from a radiant body by electromagnetic waves at the speed of light e.g. the heat from the Sun. Radiation doesn't involve contact between the two bodies by any solid or fluid. 

In the vacuum, the fastest way for heat to be transferred would be through radiation because the electromagnetic waves would be faster than any other heat transfer method and because there is no contact as there is no solid or fluid between the two bodies.

2) Through a gas: The fastest method of thermal energy transfer would be convection. Convection is the heat transfer by the real movement of molecules of a fluid. A gas is a fluid, and it would experience this kind of energy transfer as the molecules move. 

Earth's atmosphere experience this kind of energy transfer, as large air masses move by convection, creating wind currents. 

3) Through a solid: The fastest method of thermal energy transfer would be conduction. Conduction consists in the heat transfer between two bodies by molecular agitation but there is no movement involved i.e. the bodies are not fluids.

In the case of a solid, this kind of energy transfer will depend on a constant known as Thermal Conductivity, which allows assessing the ability to transfer heat through a solid. 

Have a nice day!

The method of heat transfer that will be the fastest in vacuum is radiation, in gas is convection and in solid is conduction.

There are three modes of heat transfer, they include;

conductionconvection, andradiation

The method of heat transfer that will be the fastest in gas is convection. Heat transfer by convection involves that actual movement of the particles of the fluid. The average distance between gas molecules are large which enables fast and easy transfer of heat through the movement of the molecules.

The method of heat transfer that will be the fastest in vacuum is radiation. Heat transfer by radiation does not require material medium. Vacuum is the best medium for heat transfer by radiation.

The method of heat transfer that will be the fastest in solid is conduction. Heat transfer by conduction involves the vibration of the solid particle about their mean position.

Thus, we can conclude that the method of heat transfer that will be the fastest in vacuum is radiation, in gas is convection and in solid is conduction.

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Elaborate on the suitability of "cola" type drinks to polish chrome surfaces. A) The basic pH of cola allows for easy removing of oils. B) The phosphoric acid in cola easily removes dirt and grime. C) The neutral nature of cola allows it to function like water. Eliminate D) The sugar in cola makes it likely to cause the chrome to rust.

Answers

The answer is: B) The phosphoric acid in cola easily removes dirt and grime.

Cola is a drink containing phosphoric acid in its complex composition. Acidic properties of Cola allow her to remove rust, dirt, and grime from chrome surface. In the same time, it is a very diluted solution of phosphoric acid which is very important not to damage a metal.

How many minutes make up one week?
A) 7*60^2
B) 7*24*60
C) 7*24*60^2
D) (7*24/60)

Answers

Ok 60 minutes makes an hour, 24hrs a day, 7 days a week.
So the answer is B.

WHY is there a difference between how an electrolytes and non electrolytes affect collegiative properties? Be specific.

Answers

Electrolytes affect colligative properties differently than nonelectrolytes because electrolytes produce more moles of solute particles per mole of solvent.

PLEASEEE HELP!!!!!!
water has a Ka value of what?
1 x 10-10
1 x 10-13
1 x 10-15
1 x 10-14

Answers

The answer is 1 x 10-14.

Final answer:

The water has a Ka value, more precisely referred to as ionization constant (Kw), of 1.0 × 10^-14 at 25 °C.

Explanation:

The water has a Ka value that is actually known as the ionization constant for water, Kw. The Ka value is a specific term generally used for the acid dissociation constant of substances other than water. For water at 25 °C, the product of the concentrations of the hydrogen ions ([H3O+]) and the hydroxide ions ([OH-]) is 1.0 × 10^-14, so Kw is 1.0 × 10^-14. This means that in pure water, or in a neutral aqueous solution, the concentration of hydrogen ions and hydroxide ions are both 1.0 × 10^-7 M. Therefore, the correct answer to the question 'water has a Ka value of what?' is 1 × 10^-14.

Examine the nuclear reaction: mc007-1.jpg. Why is this classified as a nuclear reaction rather than a chemical reaction? It is not balanced. A new compound is formed. A change has occurred in a nucleus. A new element has been formed.

Answers

It is a nuclear reaction since a change has occurred in the nucleus. In nuclear reactions the particles in the nucleus are changed and one element is transformed into another element when particles in the nucleus gained are lost. Unlike chemical reactions which involve the electrons in an atom, nuclear reaction involve the nucleus. A nuclear reaction may be a nuclear fission or nuclear fusion; An example of nuclear reaction is where two isotopes of hydrogen (tritium and deuterium) are fused together under high pressure and temperature, to form a more stable atom of helium. This is an example of nuclear fusion reaction.

Answer:

B/ the second option

Explanation:

This is the answer on e2020

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If 4.50 l of water vapor at 50.2 °c and 0.121 atm reacts with excess iron, how many grams of iron(iii) oxide will be produced?

Answers

When the balanced equation for this reaction is:
2Fe + 3H2O → Fe2O3  +  3H2

and according to the vapour pressure formula:
PV= nRT
when we have P is the vapor pressure of H2O= 0.121 atm
and V is the volume of H2O = 4.5 L
and T in Kelvin = 52.5 +273 = 325.5 K
R= 0.08205 atm-L/g mol-K
So we can get n H2O
So, by substitution:
n H2O = PV/RT
            = (0.121*4.5)/(0.08205 * 325.5) = 0.02038 gmol
n Fe2O3 = 0.02038 * (1Fe2O3/ 3H2O) = 0.00679 gmol
Note: we get (1FeO3/3H2O) ratio from the balanced equation.
we can get the Mass of Fe2O3 from this formula:
Mass = number of moles * molecular weight       
  when we have a molecular weight of Fe2O3 = 159.7
          =  0.00679 * 159.7 = 1.084 g
∴ 1.084 gm of Fe2O3 will produced

When the balanced equation for this reaction is:

2Fe + 3H2O → Fe2O3 + 3H2

and according to the formula for vapor pressure:

PV = nRT

when we have P is the vapor pressure H2O = 0.121 atm

and V is the volume of H2O = 4.5 L

and T in Kelvin = 52.5 +273 = 325.5 K

R = 0.08205 atm-L / g mol-K

So we can get H2O

So, with substitution:

n H2O = PV / RT

= (0.121 * 4.5) / (0.08205 * 325.5) = 0.02038 g/mol

n Fe2O3 = 0.02038 * (1Fe2O3 / 3H2O) = 0.00679 g/mol

Note: we get the ratio (1FeO3 / 3H2O) of the balanced equation.

we can get Fe2O3 Mass from this formula:

Mass = number of moles * molecular weight

we have a molecular weight of Fe2O3 = 159.7

= 0.00679 * 159.7 = 1,084 g

So, 1,084 grams will produce Fe2O3

Further Explanation

The chemical reaction in the event of chemical change from substances that react (reactants) into substances that result from reactions (products). In chemical reactions, new substances are always produced with new properties. Chemical reactions are written using the element symbol. Let's look at how to express a reaction using symbols.

Material conservation law states that in ordinary chemical reactions no material is lost even though it might change. The number of atoms in reagents must remain the same as those produced, however, they change to form new molecular patterns. If an equation fulfills the conditions, it can be said that the equation is balanced.

Characteristics of Chemical Reactions

When a chemical reaction occurs, there are changes that we can observe. Consider the following characteristics of a chemical reaction.

Chemical Reactions Can Cause Color Change Chemical reactions can form deposits Chemical Reactions Can Cause Changes in Temperature Chemical Reactions Can Cause Gas

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Subject: Chemistry

keywords: The chemical reaction

6.0 g of copper was heated from 20 degree c to 90 degree c . How much energy was used to heat cu?

Answers

Copper heat capacity would be 0.385J/C*gram which means it needs 0.385 Joule of energy to increase 1 gram of copper temperature by 1 Celcius. The calculation would be:
energy= heat capacity *mass * temperature difference
energy= 0.385J/C*gram * 6g * (90-20)
energy= 161.7J
 

Write the balanced ka and kb reactions for hso3– in water. be sure to include the physical states of each species involved in the reaction.

Answers

Final answer:

The Ka and Kb reactions for the HSO3- ion in water, acting as an acid and base respectively, are: 1) Ka Reaction: HSO3-(aq) + H2O(l) → H3O+(aq) + SO3 2-(aq), 2) Kb Reaction: HSO3-(aq) + H2O(l) → OH-(aq) + H2SO3(aq).

Explanation:

The HSO3- ion is amphoteric, meaning it can act as both an acid and a base. The ka and kb reactions for this ion in water would be as follows:

As an acid (Ka Reaction): HSO3-(aq) + H2O(l) → H3O+(aq) + SO3 2-(aq).As a base (Kb Reaction): HSO3-(aq) + H2O(l) → OH-(aq) + H2SO3(aq).

In the Ka reaction, the bisulfite ion (HSO3-) donates a hydrogen ion (H+) to water, thereby acting as an acid. The resultant ions are hydronium (H3O+) and sulfite (SO3 2-).

In the Kb reaction, the bisulfite ion (HSO3-) accepts a hydrogen ion (H+) from water, thus acting as a base. The resulting species are hydroxide ion (OH-) and sulfurous acid (H2SO3).

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The balanced reactions for [tex]HSO_{3}^{-}[/tex]⁻ in water are [tex]HSO_{3}[/tex](aq) + H₂O(l) ⇌ [tex]SO^{2-} _{3}[/tex]⁻(aq) + H₃O⁺(aq) for its Ka, and [tex]HSO_{3} ^{-}[/tex]⁻(aq) + H₂O(l) ⇌ [tex]H_{2} SO_{3}[/tex](aq) + OH⁻(aq) for its [tex]k_{b}[/tex]. The equilibrium constant expressions for these reactions are written accordingly. This demonstrates [tex]HSO_{3} ^{-}[/tex] acting both as an acid and a base.

When  (hydrogen sulfite ion) behaves as an acid in water, it donates a proton (H⁺) to form [tex]SO_{3} ^{2-}[/tex]and H₃O⁺. The balanced equation for this equilibrium reaction is:

[tex]HSO_{3} ^{2-}[/tex](aq) + H₂O(l) ⇌ [tex]SO_{3} ^{2-}[/tex](aq) + H₃O⁺(aq)

The equilibrium constant expression for this reaction ([tex]k_{a}[/tex]) can be written as:

[tex]k_{a}[/tex] = [[tex]SO_{3} ^{2-}[/tex]⁻][H₃O⁺] / [[tex]HSO_{3} ^{-}[/tex]]

When [tex]HSO_{3} ^{-}[/tex] behaves as a base, it accepts a proton (H⁺) from water to form [tex]H_{2} SO_{3}[/tex] and OH⁻. The balanced equation for this equilibrium reaction is:

[tex]HSO_{3} ^{-}[/tex](aq) + H₂O(l) ⇌ [tex]H_{2} SO_{3}[/tex] (aq) + OH⁻(aq)

The equilibrium constant expression for this reaction ([tex]k_{b}[/tex]) can be written as:

Kb = [[tex]H_{2}SO_{3}[/tex]][[tex]OH_{-}[/tex]] / [[tex]HSO_{3} ^{-}[/tex]]

A reaction occurs when solid X is placed into solution Y. As a result, the temperature of the new solution increases by 3°C. The temperature rises another 2°C when more of solid X is added to the solution. What does this indicate about the effect of adding more solid? It increased the number of molecular collisions. It decreased the number of molecular collisions. It decreased the space between the molecules and lowered the reaction rate. It increased the space between the molecules and increased the reaction rate

Answers

A It increased the number of molecular collisions.
Hope this helps

Answer:  It increased the number of molecular collisions.


Justification:


The collision theory states the reaction is the result of the collisions between the particles (atoms, ions, or molecules).


The increase of the temperature as solid is added is the result of the reaction of solid X when it is placed into the solution.


Since, the main postulate of the collision theory is that the particles have to collide to react, the amount of particles is a decisive factor of the reaction rate. The raise of the temperature when the solid is added is an evidence of this postulate: more particles → more collisions → more reactions → increase in temperature.

Iron combines with oxygen to form rust. Given the chemical reaction, how many grams of rust would be produced if 3 grams of reactants were consumed? A) 0 grams B) 1 gram C) 3 grams D) 7 grams

Answers

Hello!

If 3 grams of reactants were consumed, then C) 3 grams of rust must be produced.

Why?

There are two possible chemical reactions between iron and oxygen to form rust:

2Fe + O₂ → 2FeO (Ferrous Oxide)4Fe + 3O₂ → 2Fe₂O₃ (Ferric Oxide)

These two chemical reactions obey the Law of Conservation of Matter, which states that matter is conserved in a chemical reaction.

So, if there are 3 grams of reactants initially, and they react completely, then 3 grams of rust (either Ferrous Oxide or Ferric Oxide) must be produced for the reaction to obey the Law of Conservation of Matter.

Have a nice day!

Elements with similar properties are located

in the same row on the periodic table
on opposite ends of the periodic table
in the same column of the periodic table
next to each other on the periodic table

Answers

Those elements with similar properties are in the same column.
Final answer:

Elements with similar properties are located in the same column of the periodic table, as these elements have the same number of valence electrons, which determine their chemical properties.

Explanation:

Elements with similar properties are found in the same column of the periodic table. This is due to the fact that elements in the same column (also known as a group) have the same number of electrons in their outermost energy level, also known as valance electrons. These valance electrons determine an element's chemical properties. For example, Group 18 elements, or noble gases, all have a complete set of electrons in their outermost shell, making them extremely stable and unreactive.

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considering that silicon is a metalloid, which of the following statements is true
a. silicon's ability to conduct electric current does not vary with temperatures
b. silicon does not conduct electric current under any conditions
c. silicon is a better conductor of electric current than silver is
d. silicon is a better conductor of electric current than sulfur

Answers

D is true because sulfur is a gas sooooooo

Which of the following elements are nonmetals? A. lithium (Li) and barium (Ba) B. palladium (Pd) and zinc (Zn) C. nitrogen (N) and sulfur (S) D. beryllium (Be) and magnesium (Mg)

Answers

Answer:

C. Nitrogen (N) and sulfur (S)

Explanation:

Hello,

In this case, we could differentiate the nonmetals from the metals by understanding they do not have or have very tiny values of properties such as bright, hardness, electric conductivity, heat conductivity and others. Moreover, they are allocated at the right of the periodic table. In such a way, since nitrogen tends to be a gas and sulfur a yellowish powder, they are classified as nonmetals whereas, lithium, barium, palladium, zinc, beryllium and magnesium are considered as metals as they have the aforementioned properties.

Best regards.

We can see here that the nonmetals among the options provided are:

C. Nitrogen (N) and Sulfur (S)

What is nonmetal?

Nonmetals are a group of elements found on the right side of the periodic table. They are characterized by their properties, which are distinct from those of metals.

Nonmetals generally have properties such as being poor conductors of heat and electricity, having lower melting and boiling points, and being more brittle compared to metals. Nitrogen and sulfur are both nonmetals, whereas the other elements listed in the options (lithium, barium, palladium, zinc, beryllium, and magnesium) are metals or metal-like elements.

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A student says that since the atomic theory is just a theory, it should not be considered useful. Which statement best argues against the student’s opinion?
a) scientific theories change over time
b)scientific theories are the results of many experiments and observations
c) scientists often do not agree about specific details of scientific theories
d) scientists often propose competing theories
e) scientific theories do not become scientific laws

Answers

B.


It's the only one that would oppose to the student

Answer:

b

It's the only one that would oppose to the student

What could you make by chopping a copper wire into small pieces?

Answers

Chopping a copper wire into small pieces would only yield small pieces of copper. Chopping wire is only a physical change. One of the properties of pure substances like copper wire is that it does not change through physical means.  Pure substances are materials that retain their chemical composition throughout. 


If we want to produce pure aluminum (Al) using AlCl3 as a reactant, what other reactants should we use?
A. Fe
B. Ni
C. Au
D. Li

Answers

i Believe the answer is D. Li, Lithium. This is because, iron, nickel and Gold are below aluminium in the reactivity series, therefore they cant displace Aluminium from its strong. However, Lithium is a group one element and is more reactive than aluminium and thus can displace aluminium from AlCl3 to yield pure Aluminium.

Write a balanced equation for the thermal dehydration barium chloride

Answers

BaCl2*2H2O(heat) = BaCl2 + 2 H2O

Final answer:

The balanced equation for the thermal dehydration of barium chloride is [tex]\[ BaCl_2 \cdot 2H_2O \xrightarrow[\text{}]{\text{Heat}} BaCl_2 + 2H_2O \uparrow \][/tex]

Explanation:

The thermal dehydration of barium chloride (BaCl₂) involves the removal of water molecules from its hydrated form. Barium chloride commonly exists as a dihydrate, BaCl₂·2H₂O. The balanced chemical equation for the thermal dehydration of barium chloride dihydrate is:

[tex]\[ BaCl_2 \cdot 2H_2O \xrightarrow[\text{}]{\text{Heat}} BaCl_2 + 2H_2O \uparrow \][/tex]

In this equation, the dihydrate on the left side loses two water molecules upon heating, producing anhydrous barium chloride (BaCl₂) and releasing water vapor. The upward arrow indicates the release of water in the form of steam or water vapor.

This process is a common example of thermal decomposition reactions, where a substance breaks down into simpler components upon exposure to heat. Understanding such reactions is crucial in various chemical and industrial processes, providing insights into the behavior of compounds under specific conditions.

#1: When you heat an air-filled, sealed can, what happens inside?

A. The collisions of air molecules against the wall of the can are weaker and less frequent.

B. The collisions of air molecules against the wall of the can are stronger and more frequent.

C. The collisions of air molecules against the wall of the can do not change.

**my answer: B

is that correct @aaronq ?

Answers

Yes, your answer is correct. Heating an air-filled, sealed can results in stronger and more frequent collisions of air molecules against the wall, leading to an increase in pressure.

When you heat an air-filled, sealed can, the collisions of air molecules against the wall of the can become stronger and more frequent. This is because as the temperature inside the can increases, the air molecules move faster and collide more energetically with the can walls. This increased movement results in a rise in pressure inside the can due to an increased number of collisions and force per collision. This concept is based on the principles of gas pressure and the kinetic molecular theory, which relate temperature, molecular speed, and pressure in a contained gas.

Gas pressure is indeed caused by collisions between gas molecules and the container walls. An increase in temperature causes the molecules to move faster, leading to more collisions with the walls, which translates into an increase in pressure. Furthermore, the concept that gas pressure can be increased by compressing a gas into a smaller volume explains why a canister feels cold when its gas is released: the surrounding air absorbs the energy from the expanding gas.

Consider the balanced equation. 2hcl + mg mgcl2 + h2 if 40.0 g of hcl react with an excess of magnesium metal, what is the theoretical yield of hydrogen? 1.11 g 2.22 g 52.2 g 104 g

Answers

The correct answer is option (A). The theoretical yield of hydrogen (H₂) is approximately 1.11 g.

To find the theoretical yield of hydrogen gas (H₂) produced in this reaction, follow these steps:

1. Determine the molar mass of HCl:

- The molar mass of HCl = 1.01 g/mol (for H) + 35.45 g/mol (for Cl) = 36.46 g/mol.

2. Calculate the number of moles of HCl in 40.0 g:

[tex]\text{moles of HCl} = \frac{40.0 \, \text{g}}{36.46 \, \text{g/mol}} = 1.095 \ moles[/tex]

3. Using the stoichiometry of the balanced equation:

For every 2 moles of HCl, 1 mole of H₂ is produced.

Therefore, moles of H₂ produced = [tex]\frac{1.095 \, \text{moles of HCl}}{2} = 0.5475 \ moles \ of \ H_2[/tex].

4. Determine the molar mass of H₂:

- The molar mass of H₂ = 2.016 g/mol.

5. Calculate the theoretical yield of H₂ in grams:

[tex]{mass\ of {H_2}} = 0.5475 \times 2.016 = 1.103824 g[/tex]

6. Round to the nearest gram: - 1.11 g

So, the theoretical yield of hydrogen gas is approximately: A) 1.11 g

The complete question is:

Consider the balanced equation. [tex]2HCl + Mg \rightarrow MgCl_2 + H_2[/tex] if 40.0 g of HCl react with an excess of magnesium metal, what is the theoretical yield of hydrogen?

A) 1.11 g

B) 2.22 g

C) 52.2 g 1

D) 104 g

What might cause the percent yield of sodium chloride to be less than 100%? How about when it is more than 100%? o.o

Answers

Percent yield offers how much of the expected quantity is created. Percent yield is actual yield divided by theoretical yield. Theoretical yield comes from stoichiometry whereas actual yield comes from lab results. Percent yield can be lower than 100% when some of the initial quantity is not fully reacted, or if say some of the sodium chloride in a water solution is boiled off with the water. Percent yield can be greater than 100% if there are impurities in the yield. That is, an impurity that remains in the final compound can add to the weight and give you over 100% yield.

An atom has three full orbitals in its second energy level.

How many electrons are present in the second energy level of the atom?

6
12
3
9

Answers

Orbitals am only hold two electrons each, so 3 orbitals can hold 6 electrons

Answer:

6 hope this helps

Which of the following is not a best practice for soil conservation?

Question 1 options:

Mulching—covering the soil with wood chips or other protective cover

Mechanical methods—building structures to improve drainage and decrease erosion

Crop management—changing planting patterns & planting cover crops

Bioresurfacing- increasing land and agriculture usage

Answers

The appropriate answer is d. Bioresurfacing by increasing land and agriculture usage. Expansion of agricultural practices means more tillage of the soil. Increasing tillage increases the risk of soil erosion and is therefore not a suitable conservation method. mulching reduces the negative impact of rain showers and helps to retain soil moisture.
Mechanical methods use man made structures to conserve the soil while crop management is a biological method of soil conservation.

how many moles of co2 are produced from 1.0 mol butane c4h10

Answers

The balanced equation will tell you that.
C4H10 + O2 ===> CO2 + H2O
C4H10 + 6.5 O2 ===> 4CO2 + 5H2O

The number of mols of CO2 is 4.

If 23 g of sodium reacts completely with 71 g of chlorine, ______ grams of product would be expected. Round your answer to the nearest gram. what would be the answer?

Answers

If 23 g of sodium reacts completely with 71 g of chlorine, the limiting reactant is determined, and approximately 59 grams of sodium chloride (NaCl) can be produced.

1. Calculate the moles of each reactant:

Sodium: 23 g / 23 g/mol = 1 mol

Chlorine: 71 g / (2 * 35.5 g/mol) = 1 mol

2. Determine the limiting reactant:

In this case, both sodium and chlorine have the same number of moles (1 mol each). Therefore, neither is technically "limiting" the reaction. However, for calculating the theoretical yield (maximum amount of product), we need to consider that one reactant might be completely consumed before the other.

3. Calculate the grams of product based on the limiting reactant (assuming complete consumption of one reactant):

Since both reactants have the same amount, choosing either sodium or chlorine as the limiting reactant will give the same result. Let's assume sodium is completely consumed.

NaCl produced: 1 mol Na x (1 mol NaCl / 1 mol Na) x (23 g NaCl/mol + 35.5 g NaCl/mol) = 58.5 g NaCl

4. Round the answer to the nearest gram:

58.5 g rounded to the nearest gram is 59 g.

Therefore, if 23 g of sodium reacts completely with 71 g of chlorine, we can expect around 59 grams of sodium chloride (NaCl) to be produced.

Final answer:

If 23 g of sodium reacts with 71 g of chlorine, based on stoichiometry and the limiting reagent principle, 94 grams of sodium chloride would be the expected product, rounded to the nearest gram.

Explanation:

If 23 g of sodium reacts completely with 71 g of chlorine, the amount of product formed can be determined using stoichiometry based on the balanced chemical equation 2 Na(s) + Cl2(g) → 2 NaCl(s).

Based on the molar mass of the reactants and products, we can conclude that 45.98 amu of sodium will react with 70.90 amu of chlorine to produce 275.9 amu of sodium chloride. Converting these amounts to grams, we find that every 22.99 g of sodium reacts with 35.45 g of chlorine to produce 58.45 g of sodium chloride (NaCl).

Given the ratio of sodium to chlorine to sodium chloride is 1:1.545:2.54 in terms of grams, we can calculate that 23 g of sodium will react with 35.54 g (23 g × 1.545) of chlorine to produce a total of 58.54 g (23 g × 2.54) of sodium chloride. Since the question states that we have 71 g of chlorine, sodium is the limiting reagent, and therefore the maximum yield of NaCl will be based on the amount of sodium.

Thus, if 23 g of sodium reacts completely with 71 g of chlorine, 94 grams of sodium chloride (NaCl) would be the expected rounded product to the nearest gram.

A flask contains a gas mixture of methane, hydrogen, and nitrogen with partial pressures of 1 atm, 1.2 atm, and 1.1 atm, respectively. What is the total pressure of the mixture?

Answers

3.3. Just add all the partial pressures together to get the total pressure. 

Answer:

3.3 atm

Explanation:

This is a simple application of Dalton's law of partial pressure which state that the total pressure exerted by a mixture of gas is the sum of the individual partial pressure of the component gases.

[tex]P_{total} = P_1 + P_2 + ........ + P_n[/tex]

Hence, the total pressure of the gas mixture becomes:

[tex]P_{total} = P_{methane} + P_{hydrogen} + ........ + P_{nitrogen}[/tex]

                         = 1 + 1.2 + 1.1

                                 = 3.3 atm

The total pressure of the mixture is 3.3 atm

Note: Moles to grams, or grams to moles you will need to use molar mass (g/mol).
1)How many moles are in 20.2 g HCl?
 2) How many grams are in 2 moles of HCl?

Note: When converting from moles to molecules, you need the following: 1 mole = 6.022 x 1023 molecules
3) How many molecules are in 23 moles of Sodium?
4) How many moles are in 8.022 x 1026 molecules of NaCl?

Note: 1 mole = 22.4 L
5) How many moles are in 5 Liters of H2 gas?
6) How many Liters are in 5 moles of H2 gas?

Multiple Conversions in one problem.
7) How many grams of HCl will be produced with 16.2 grams of H2 and excess Cl2? (H2 + Cl2 -> 2HCl)

8) How many Liters are there in 46 g of Cl2 gas?

Answers

1) Answer is: there is 0,554 moles in 20,2 grams of HCl.
m(HCl) = 20,2 g.
M(HCl) = 1,01 g/mol + 35,45 g/mol.
M(HCl) = 36,46 g/mol.
n(HCl) = m(HCl) ÷ M(HCl).
n(HCl) = 20,2 g ÷ 36,46 g/mol.
n(HCl) = 0,554 mol.
n - amount of substance.

2)  Answer is: there is 72,92 grams in 2 moles of HCl.
n(HCl) = 2 mol.
M(HCl) = 1,01 g/mol + 35,45 g/mol.
M(HCl) = 36,46 g/mol.
m(HCl) = n(HCl) · M(HCl).
n(HCl) = 2 mol · 36,46 g/mol.
n(HCl) = 72,92 g.
M - molar mass.

3) Answer is: there is 1,385·10²⁵ atoms ins 23 moles of sodium.
n(Na) = 23 mol.
N(Na) = n(Na) · Na.
N(Na) = 23 mol · 6,022·10²³ 1/mol.
N(Na) = 1,385·10²⁵.
Na - Avogadro number.
N - number of particles.

4) Answer is: there is 1332 moles in 8,022·10²⁶ molecules of NaCl.
N(NaCl) = 8,022·10²⁶.
N(NaCl) = n(Na) · Na.
n(NaCl) = N(NaCl) ÷ Na.
n(NaCl) = 8,022·10²⁶ ÷ 6,022·10²³ 1/mol.
n(NaCl) = 1,332·10³ mol = 1332 mol.
Na - Avogadro number.
N - number of particles.

5) Answer is: there is 0,223 moles in 5 liters of hydrogen gas.
V(H₂) = 5 L.
n(H₂) = ?.
Make proportion: 5 L : n(H₂) = 22,4 L : 1 mol.
22,4 · n(H₂) = 5 L · 1 mol.
n(H₂) = 0,223 mol.
V - volume of hydrogen gas.

6) Answer is: there is 112 liters in 5 moles of hydrogen gas.
n(H₂) = 5 mol.
V(H₂) = ?.
Make proportion: 5 mol : V(H₂) = 1 mol : 22,4 L
22,4 L · 5 mol = V(H₂) · 1 mol.
V(H₂) = 112 L.
V - volume of hydrogen gas.
n - amount of substance.

7) Answer is: there is 584,81 grams of HCl.
Chemical reaction: H₂ + Cl₂ → 2HCl.
m(H₂) = 16,2 g.
n(H₂) = m(H₂) ÷ M(H₂).
n(H₂) = 16,2 g ÷ 2,02 g/mol.
n(H₂) = 8,02 mol.
From chemical reaction: n(H₂) : n(HCl) = 1 : 2.
n(HCl) = 16,04 mol.
m(HCl) = 16,04 mol · 36,46 g/mol.
m(HCl) = 584,81 g.

8) Answer is: there is 14,51 liters in 46 g of Cl₂ gas.
m(Cl₂) = 46 g.
n(Cl₂) = m(Cl₂) ÷ M(Cl₂).
n(Cl₂) = 46 g ÷ 70,9 g/mol.
n(Cl₂) = 0,648 mol.
Make proportion: 0,648 mol : V(Cl₂) = 1 mol : 22,4 L.
V(Cl₂) = 0,648 mol · 22,4 L ÷ 1 mol.
V(Cl₂) = 14,51 L.


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