List the information you need to find how many milliliters of a stock solution of 2.00m mgso4 you would need to prepare 100.0 ml of 1.00m mgso4

Answers

Answer 1
we can use the dilution equation when preparing diluted solutions from concentrated solutions
c1v1 = c2v2
where c1 is concentration and v1 is volume of the concentrated solution
c2 is concentration and v2 is volume of the diluted solution prepared
substituting these values in the equation 
2.00 M x V = 1.00 M x 100.0 mL 
V = 50.0 mL 
50.0 mL of concentrated solution should be taken and filled up to 100.0 mL to prepare a 1.00 M solution
Answer 2
Final answer:

To determine how many milliliters of a stock solution are needed to prepare a given volume of a diluted solution, one can use the dilution formula 'M1V1 = M2V2’. In this case, you'd need 50.0 ml of the stock solution to prepare 100.0 ml of a 1.00m MgSO4 solution.

Explanation:

To find out how many milliliters of a stock solution of 2.00m MgSO4 you would need to prepare 100.0 ml of 1.00m MgSO4, you can use the formula M1V1 = M2V2, where M1 is the molarity of the initial solution, V1 is the volume of the initial solution, M2 is the molarity of the final solution, and V2 is the volume of the final solution.

Firstly, we substitute the given values into the formula. M1 is our initial molarity (2.00m), V1 is what we're trying to find, M2 is our final molarity (1.00m) and V2 is our final volume (100.0 ml). By rearranging the formula, we get V1 = (M2 * V2) / M1.

The calculation step becomes: V1 = (1.00m * 100.0 ml) / 2.00m = 50.0 ml. Therefore, you would need 50.0 milliliters of the stock solution to prepare 100.0 ml of a 1.00m MgSO4 solution.

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Related Questions

A ping pong ball with a dent in it can be put into a pan of boiling water. After a short amount of time, the dent will pop out. Explain why this occurs.

Answers

Because when temperature increases, volume increases. In terms of this, the temperature increasing would be the boiling water since its hot will push the volume up and in result pop the volume of the ping pong ball back into its shape.

Answer:

The right option is; b. the water caused an increase in temperature of the air inside the ball and an increase in pressure.

The dent (hollow area formed by pressing or hitting) from the ping-pong ball disappeared because energy was transferred from the hot boiling water in which the ball was placed to the air inside the ball. This transferred energy will increase the temperature of the air inside the ball and the air molecules will begin to move faster with a greater force. Hence, causing an increase in pressure.

Explanation:

How many elements are in a compound that has a formula NiCI2+6H2O?

Answers

They are four elements.

How many ml of 0.112 M Pb(NO3)2 are needed to completely react with 10.0ml of a 0.105 M KI Given Pb(NO3)2 (aq) + 2KI(aq)=2KNO3(aq)?

Answers

0.105 x 10 /2 / 0.112= 4.6875 ml of 0.112M Pb(NO3)2

Answer : The volume of [tex]Pb(NO_3)_2[/tex] needed are, 4.6875 ml

Explanation :

First we have to calculate the moles of [tex]KI[/tex].

[tex]\text{Moles of }KI=\text{Molarity of }KI\times \text{Volume of solution}=0.105mole/L\times 0.01L=0.00105mole[/tex]

Now we have to calculate the moles of [tex]Pb(NO_3)_2[/tex]

The given balanced chemical reaction is,

[tex]Pb(NO_3)_2(aq)+2KI(aq)\rightarrow 2KNO_3(aq)+PbI_2[/tex]

From the balanced chemical reaction, we conclude that

As, 2 moles of KI react with 1 mole of [tex]Pb(NO_3)_2[/tex]

So, 0.00105 moles of KI react with [tex]\frac{0.00105}{2}=0.000525[/tex] mole of [tex]Pb(NO_3)_2[/tex]

Now we have to calculate the volume of [tex]Pb(NO_3)_2[/tex]

[tex]\text{Volume of }Pb(NO_3)_2=\frac{\text{Moles of }Pb(NO_3)_2}{\text{Molarity of }Pb(NO_3)_2}[/tex]

[tex]\text{Volume of }Pb(NO_3)_2=\frac{0.000525mole}{0.112mole/L}=4.6875\times 10^{-3}L=4.6875ml[/tex]

conversion used : (1 L = 1000 ml)

Therefore, the volume of [tex]Pb(NO_3)_2[/tex] needed are, 4.6875 ml

The practice of concluding "do not reject h0" is preferred over "accept h0" when we

Answers

It gives off a stronger meaning and tone.
I hope this helps!

Sunspots appear dark because they are what ?

Answers

Sunspots have strong magnetic fields, thus being much cooler than their surroundings. Yet, they are still individually very hot and can reach up to a temp of 3,800 K. But since they are cooler than their surroundings, they appear to be much darker to the visible eye. 

Let me know if you need anything further. :)

                             - Dotz
Final answer:

Sunspots appear dark because they are cooler than the surrounding areas of the sun's surface. The cooler temperature causes less light to be emitted, making the sunspots look dark.

Explanation:

Sunspots appear dark because they are cooler than the surrounding areas of the sun's surface, also known as the photosphere. While they are still very hot, sunspots have temperatures of about 3,000 to 4,500 Kelvin, which is cooler than the average temperature of the photosphere, which is about 5,500 Kelvin. This difference in temperature causes less light to be emitted, and therefore the sunspots appear dark compared to the rest of the sun's surface

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PLEASE HELP MEEEEE (using 98 points to post)
Given that the molal freezing point depression constant (kf) for methyl alcohol (CH3OH) is -0.83 oC/molal, how much will the freezing point of methyl alcohol be lowered if 46.0 g of glycerine (C3H8O3) is added to 1.00 kg of methyl alcohol? (must show work, correct unit and correct answer)

Answers

Δt = i Kf m

2.86 °C = (1) (1.86 °C kg mol-1) (x / 0.750 kg)

2.86 °C = (2.48 °C mol-1) (x)

x = 1.1532 mol

33.7 g / 1.1532 mol = 29.2 g/mol


29.2 g/mol is your answer

Which of the following statements is not true of the process of nuclear fission? (3 points) It is the process used in most nuclear power plants. It only occurs in very small atoms with low mass. It involves the splitting of an atom's nucleus. It can occur in a chain reaction.

Answers

Answer: the statement that is not true is the second one: It only occurs in very small atoms with low mass.

Explanation:

The nuclear fission consists in the division or fragmentation of an atomic nuclei into smaller fragments releasing huge amounts of energy.

The biggest and heaviest atoms are unstable, meaning that they gain stability by splitting into smaller, lighter atoms.

So, the third given statement contradicts the previous fact.

That is why most of the heaviest elements have not been found naturally but have been created synthetically and have very short life times.
Nuclear fission does not only occur in very small atoms with low mass.

So the false answer is the second one It only occurs in very small atoms with low mass

Question 1 unsaved the atoms of group b elements _____ electrons when they form ions. question 1 options: cannot be determined either gain or lose lose gain

Answers

How does the law of conservation of mass apply  to this reaction: C2H4 + O2 → H2O + CO2?

According to the following electron structure, how many valence electrons do these fluorine atoms have? F= 1s12s22p5

Answers

The highest sequence for this shell is the number 2, preceding both the s and p in the diagram. This means that the outermost shell is the second level shell. In this shell, there are 7 electrons, 2 in the 2s orbital and 5 in the 2p orbital.

As a side note (not sure if this is a typo), the electron structure for fluorine begins with a 1s2, not a 1s1.

Fluorine atoms have seven valence electrons according to their electron configuration, which is reflected in their belonging to Group 7A of the periodic table and is also depicted in their Lewis dot structure.

According to the given electron structure of fluorine (F=1s22s22p5), fluorine atoms have seven valence electrons. The electron configuration indicates that there are two electrons in the first energy level (1s2) and seven electrons in the second energy level (2s22p5). Since the second energy level is the outermost shell, these seven electrons are considered the valence electrons.

Fluorine belongs to Group 7A in the periodic table, which means it is expected to have seven valence electrons. This is confirmed by the electron configuration. These valence electrons are represented in a Lewis dot structure by placing seven dots around the symbol for fluorine (F).

What is the bond angle in a tetrahedral molecule? 120° 180° 109.5° 90°

Answers

Final answer:

The bond angle in a tetrahedral molecule is ideally 109.5° but can be slightly smaller in molecules like water and ammonia due to the presence of lone pairs of electrons.

Explanation:

The bond angle in a tetrahedral molecule is 109.5°. However, it can differ slightly due to the effects of repulsion between atoms or if lone pairs of electrons are involved. For instance, in water, which has a tetrahedral structure, the angle is 104.5° due to the two lone pairs of electrons on the oxygen atom.

These lone pairs occupy more space, causing the bond angle to be slightly less than the ideal. Similarly, ammonia has a bond angle of 107.3° due to its one lone pair. Thus, while the ideal bond angle in a tetrahedral molecule is 109.5°, the presence of lone pairs can cause the angle to be slightly smaller.

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How is stoichiometry used to calculate the amount of product from amount of reactant?

Answers

Stoichiometry deals with the quantitative measurement of reactants and products in a chemical reaction. Let suppose you are given with following reaction;

                                            A  +  2 B   →    3 C

According to this reaction 1 mole of A reacts with 2 moles of B to produce 3 moles of C. Now using the concept of mole one can easily measure the amount of reactants reacted and the amount of product formed, as...

                    1 Mole Exactly equals 6.022 × 10²³ particles

                    1 Mole of Gas (at STP) exactly occupies 22.4 L Volume

                    1 Mole of any compound exactly equals the molar mass in                                 grams

Therefore, Stoichiometry is very helpful in quantitative analysis.

Stoichiometry relates moles of rectant to moles of product

What type of information can one obtain by taking a mass spectrum of an organic molecule like dodecane?

Answers

Mass spectrum of Dodecane will give following information.

1 ) Molecular Peak or Parent Peak:
                                                       The Parent peak will appear at m/z = 170. The intensity of this peak will be very weak.

2) Fragments:
                      Usually the fragments of such long chain alkanes appear with spacing of 14 amu, Hence, the peaks in dodecane will be as follow,

         170 - 156 - 142 - 128 - 114 - 100 - 86 - 72 - 58 - 44 - 30 - 16

3) Base Peak:
                     Most probably the Base peak will appear at m/z = 57. This peak is due to the formation of tertiary butyl cation as the intensity mainly depends upon the stability of cation. So this cation might form due to rearrangment giving the intensity of 100%.



The table shows the results of four surveys that randomly sampled 50 girls at a community center about their favorite sport at the center.
Swimming Basketball Soccer Total
Survey 1 16 15 19 50
Survey 2 15 15 20 50
Survey 3 7 35 8 50
Survey 4 14 18 18 50

Identify surveys that are likely biased. Based on the unbiased surveys, what percent of the girls at the community center are likely to choose swimming as their favorite sport?

14 %
23 %
26 %
30 %

Answers

30% is your answer biaa!!

Answer:

30%

Explanation:

What are the relative ion concentrations in an acid solution?

Answers

Answer is: more H⁺ ions than OH⁻ ions.
An Arrhenius acid is a substance that dissociates in water to form hydrogen ions or protons. 
For example, hydrochloric acid dissociate in aqueous solution to form hydrogen ions (H⁺) and chloride anion (Cl⁻):
HCl(aq) → H⁺(aq) + Cl⁻(aq).

An Arrhenius base is a substance that dissociates in water to form hydroxide ions (OH⁻). 
For example lithium hydroxide is an Arrhenius base:

LiOH(aq) → Li⁺(aq) + OH⁻(aq).


Answer:

more H+ ions

Explanation:

What mass of argon occupies 4.3 l at 70 kpa and 20 c?

Answers

Let us assume that Argon gas is acting Ideally,' Then, According to Ideal Gas Equation,

                                        P V  =  n R T   ----- (1)
Also,
          moles  =  n  =  Mass / M.mass  =  m / M

Substituting value of n in equation 1,

                                        P V  =  (m/M) R T

Solving for mass 'm',

                                        m  =  P V M / R T    ----- (2)
Data Given;
                   P  =  70 kPa  =  0.69 atm

                   V  =  4.3 L

                   T  =  20 °C + 273  =  293 K

                   R  =  0.0821 atm.L.mol⁻¹.K⁻¹

                   M  =  39.94 g.mol⁻¹

Now, putting values in equation 2,

m  =  (0.69 atm × 4.3 L × 39.94 g.mol⁻¹) ÷ (0.0821 atm.L.mol⁻¹.K⁻¹ × 293 K)

m  =  4.89 g of Argon
Final answer:

To find the mass of argon gas at 4.3 liters, 70 kPa, and 20 °C, use the ideal gas law, convert units to atm and Kelvin, solve for moles, and then multiply by the molar mass of argon to obtain the mass, which is approximately 4.07 grams.

Explanation:

The question asks for the mass of argon gas that occupies a volume of 4.3 liters at a pressure of 70 kPa and a temperature of 20 °C. To answer this, we can use the ideal gas law equation, PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the ideal gas constant, and T is the temperature in Kelvin.

First, we convert the given temperature to Kelvin:


 20°C + 273.15 = 293.15 K

Next, we need to convert the pressure from kPa to atm, since the ideal gas constant (R) is typically given in L·atm/(mol·K):


 70 kPa * (1 atm / 101.325 kPa) ≈ 0.691 atm

We can then rearrange the ideal gas law to solve for the number of moles (n):


 n = PV / (RT)

Using the values and R = 0.0821 L·atm/(mol·K), we calculate n:


 n = (0.691 atm * 4.3 L) / (0.0821 L·atm/(mol·K) * 293.15 K)
 n ≈ 0.102 moles

Finally, using the molar mass of argon, which is about 39.948 g/mol, we find the mass:


 mass = n * molar mass of argon
 mass = 0.102 moles * 39.948 g/mol
 mass ≈ 4.07 g

Therefore, the mass of argon that occupies a volume of 4.3 liters at 70 kPa and 20 °C is approximately 4.07 grams.

Which statement describes the difference between chemical reactions and nuclear decay

Answers

Chemical reactions might be fast -- burning gasoline, or slow -- rusting. Usually the require two or more reactants. Most of these, along with requiring more than 1 substance, also requires something to get it started ... burning needs a spark to start it.
Nuclear decay only requires 1 thing, the radioactive element. Wait and it spontaneously undergoes decay.

Chemical reactions can result in new compounds, while nuclear reactions can result in new elements.


Which best explains how elements combine in different ways to produce compounds?

Answers

Final answer:

Elements combine in different ways to form compounds through chemical reactions, where bonds are formed holding the atoms together. The ratio of atoms in a compound is always a fixed, small, whole number, as per Dalton's atomic theory. Examples include water (H2O) and table salt (NaCl).

Explanation:

Elements combine in different ways to produce compounds through a chemical reaction, which results in the formation of chemical bonds. For general reference, a compound is formed when two or more elements chemically combine, exhibiting definite chemical and physical properties distinct from its independent elements. Chemical bonds, namely ionic or covalent, hold the atoms together in a compound.

Take water as an example, it is a compound formed when two hydrogen atoms react with one oxygen atom, creating a molecule of water (H2O). In this compound, the ratio of hydrogen to oxygen atoms is 2:1, thus, presenting a clear demonstration of how elements combine in various ratios to create compounds with unique properties.

Another example can be the combination of sodium and chlorine to form table salt (NaCl). Here, one atom of sodium combines with one atom of chlorine. These examples manifest Dalton's atomic theory which elucidates that atoms of different elements can combine in fixed, small, whole-number ratios to form compounds.

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The way elements combine to produce compounds is best explained by chemical reactivity. Therefore, the correct answer is option a. chemical reactivity.

To understand which option best explains how elements combine in different ways to produce compounds, let’s look at each choice:

a. Chemical reactivity: This describes how readily an element reacts with other elements to form compounds, based on their electron configurations.b. State of matter: This refers to whether an element is a solid, liquid, or gas at room temperature, which does not directly affect how elements combine chemically.c. Similar physical properties: Elements with similar physical properties do not necessarily form compounds together.d. Matching atomic numbers: Atomic number defines an element and does not affect how different elements combine to form compounds.

Therefore, chemical reactivity, best explains how elements combine in different ways to produce compounds. This is because elements combine based on their electron configurations and how their atoms interact to form stable molecules.

complete question.

Which best explains how elements combine in different ways to produce compounds?

a. chemical reactivity

b. state of matter

c. similar physical properties

d. matching atomic numbers

When the compound BaCl2 forms , what happens to the Ba and Cl ions

Answers

Ba stays as Ba+2 and Cl stays as Cl-

Answer : The correct answer is Ba²⁺ and Cl⁻ ions .

This can be explained using Solubility concept .

Solubility is defined as property referring to ability of a substance , SOLUTE , to dissolves in a SOLVENT . It is measured at maximum amount of solute that dissolves in solvent as equilibrium .

Solubility of any compound can be checked using Solubility Rule ( Image ).

BaCl₂ is salt of Chloride . Since the solubility rules says that salts if chlorides are soluble , Hence BaCl₂ is also soluble .

SO when BaCl₂ forms in aqueous solution , it again dissociates to forms ions since it is soluble in aqueous solution . It produced one Ba²⁺ ion and two ions of Cl⁻ .

The BaCl₂ dissociates as follows :

[tex] BaCl_2 (aq) \rightarrow Ba^2^+ (aq) + 2 Cl^- (aq) [/tex]

Hence even BaCl₂ forms but it remain as dissociated ionic form as Ba²⁺ and Cl⁻ ions.

The formula for carbohydrates is C n H 2n O n . Which statement accurately describes this general formula?


A_There are more carbon atoms than oxygen atoms.


B_There are twice as many carbon atoms as hydrogen atoms.


C_The ratio of the atoms is 1:1:2 in the carbohydrate formula.


D_There are twice as many hydrogen atoms as carbon atoms.


Answers

D. There are twice as many hydrogen atoms as carbon atoms.

Ch of these three gases is most abundant in the atmosphere? which of these three gases is most abundant in the atmosphere? carbon dioxide (co2) nitrous oxide (n2o) methane (ch

Answers

Answer is Carbon dioxide.

The given gases are trace gases. Our atmosphere has 0.1% of trace gases. Among those trace gases, carbon dioxide level is highest as 93.49%. Methane has 0.44% and amount of nitrous oxide is 0.07%. But when considering the whole atmosphere nitrogen gas is the most abundant gas as 78% and next is oxygen as 21%.

Carbon dioxide is the most abundant of the three gases mentioned in the Earth's atmosphere. Nitrogen and oxygen are the most abundant gases overall. Methane is more effective on a per-molecule basis at heating the atmosphere than carbon dioxide.

The question involves identifying which of the three gases carbon dioxide ([tex]CO_2[/tex]), nitrous oxide ([tex]N_2O[/tex]), or methane ([tex]CH_4[/tex]) is most abundant in the Earth's atmosphere. When considering these gases specifically, carbon dioxide is the most abundant. However, it is important to note that the major components of the atmosphere are nitrogen (78.1%) and oxygen (20.9%), with gases such as argon, carbon dioxide, neon, helium, methane, and nitrous oxide present in much smaller amounts.

Regarding the effectiveness at heating the atmosphere, methane is more effective on a per-molecule basis than carbon dioxide due to its ability to absorb more heat. However, carbon dioxide is more abundant and also contributes significantly to the atmospheric warming, playing a crucial role in the Earth's greenhouse effect beside water vapor, the most abundant greenhouse gas.

Why are the very lowest mass stars unable to fuse helium in their cores?

Answers

Because they have used most of their energy

) how much of a 0.225 m kcl solution contains 55.8 g kcl?

Answers

The amount  of a 0.225 M  KCl solution  that contain  55.8 g KCl  is calculated  as  below

calculate  the  moles  of KCl =mass/  molar  mass

=55.8 g/74.5 g/mol = 0.749  moles

volume  of KCl = moles/molarity

= 0.749/0.225 = 3.329 liters  of KCl

Answer : The volume of solution is, 3.33 liter

Explanation : Given,

Mass of KCl = 55.8 g

Molar mass of KCl = 74.5 g/mole

Molarity = 0.225 M

Molarity : It is defined as the number of moles of solute present in one liter of solution.

In this question, the solute is KCl.

Formula used :

[tex]Molarity=\frac{w_b}{M_b\times V}[/tex]

where,

[tex]w_b[/tex] = mass of solute KCl

[tex]M_b[/tex] = molar mass of solute KCl

V = volume of solution = ?

Now put all the given values in the above formula, we get the molarity of the solution.

[tex]0.225mole/L=\frac{55.8g}{74.5g/mole\times V}[/tex]

[tex]V=3.33L[/tex]

Therefore, the volume of solution is, 3.33 liter

Hydrocarbons are chain-like or ring-like molecules made of carbon and ________ atoms.

Answers

Hydrocarbons are made of Hydrogen and carbon atoms. An easy way to remember is in the name itself. 

The molarity of a solution of 5.0 g of kcl in 100. ml of solution is ________.

Answers

Molarity is defined as the number of moles of solute in 1 L of solution 
mass fo KCl in the solution is - 5.0 g
number of moles of KCl - 5.0 g/ 74.5 g/mol  = 0.067 mol
number of moles of KCl in 100 mL - 0.067 mol
therefore number of KCl moles in 1 L - 0.067 / 100 mL x 1000 mL = 0.67 M
molarity of KCl is 0.67 M

Answer: The molarity of solution is 0.67 M

Explanation:

To calculate the molarity of solution, we use the equation:

[tex]\text{Molarity of the solution}=\frac{\text{Mass of solute}\times 1000}{\text{Molar mass of solute}\times \text{Volume of solution (in mL)}}[/tex]

We are given:

Mass of solute (KCl) = 5.0 g

Molar mass of potassium chloride = 74.55 g/mol

Volume of solution = 100 mL

Putting values in above equation, we get:

[tex]\text{Molarity of solution}=\frac{5g\times 1000}{74.55g/mol\times 100mL}\\\\\text{Molarity of solution}=0.67M[/tex]

Hence, the molarity of solution is 0.67 M

Which of the following is the best conductor of electricity
Nacl (s)
Nacl (aq)
C6h12o6 (aq)
C6h12o6 (S)

Answers

Option B: NaCl (aq)

There are two important factors that make a compound a good conductor of electricity that is its state and number of charge particles.

Here, the substances in solid state do not conduct electricity due to unavailability of free ions as movement of free ions in a substance is responsible for electricity conduction.

Therefore, NaCl(s) and [tex]C_{6}H_{12}O_{6}(s)[/tex] do not conduct electricity.

Now, out of NaCl(aq) and and [tex]C_{6}H_{12}O_{6}(aq)[/tex], NaCl(aq) is a good conductor of electricity because in aqueous solution, NaCl completely dissociates into [tex]Na^{+}[/tex] and [tex]Cl^{-}[/tex] ions. Due to the presence of these ions it is good conductor of electricity.


NaCl (aq) is the best conductor of electricity. Therefore, option B is correct.

When NaCl is dissolved in water, it dissociates into its constituent ions, Na+ and Cl-. These ions are electrically charged particles that can move freely in the solution. The presence of these mobile ions allows the solution to conduct electricity.

In an aqueous solution of NaCl, the positively charged sodium ions (Na+) and negatively charged chloride ions (Cl-) are attracted to the oppositely charged electrodes of an electrical circuit. When a voltage is applied across the solution, the ions are driven toward their respective electrodes. This movement of charged particles constitutes an electric current. Thus, option B is correct.

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Whats the point of love?

Answers

 In the beginning, when you have butterflies in your stomach from meeting someone new, dopamine levels surge. All that dopamine gives you an extra thrill when you see your newly beloved, creating an intense craving to be around them. A neurotrophin called nerve growth factor accompanies all this euphoria and increases your emotional dependency. Lastly, serotonin levels drop, which cranks up the dial for desire. This chemical cocktail is why lovestruck couples can be so infatuated with each other. Overall its to reproduce. If you're looking for a more human answer, post the question again in English category and I'll give you the philosophical answer instead of the chemical. On another note- you okay there?

All animals want to survive. With this in mind, lets talk about some natural drugs that your body creates to create this feeling of "love".

P.E.A. is a natural anti-depressant that the body makes, kind of like dopamine. This is the most affiliated with the nickname "love drug". It creates the need to reproduce sexually. This is the primal instinct; to reproduce and pass on your genetic material.

Now, as you stay with one partner, you may find that the feeling changes a bit; this is P.E.A. turning into oxytocin. This is a deeper kind of love that humans develop once they have been with a partner for long enough. High levels of oxytocin are found when a mother has a child, usually found during breastfeeding.

There are many natural drugs that your body produces to create the feeling of love. If you have any questions, let me know! Hope this helps!

When copper reacts with silver nitrate according to the equation, the number of grams of copper required to produce 432 grams of silver is -?

Answers

Answer is: mass of copper is 127 grams.
Balanced chemical reaction: Cu(s) + 2AgNO₃(aq) → Cu(NO₃)₂(aq) + 2Ag(s).
m(Ag) = 432 g. 
n(Ag) = m(Ag) ÷ M(Ag).
n(Ag) = 432 g ÷ 108 g/mol.
n(Ag) = 4 mol.
From chemical reaction: n(Ag) : n(Cu) = 2 : 1.
n(Cu) = 4 mol ÷ 2 = 2 mol.
m(Cu) = n(Cu) · M(Cu).
m(Cu) = 2 mol · 63.5 g/mol.
m(Cu) = 127 g.

Final answer:

To produce 432 grams of silver from the reaction of copper with silver nitrate, 127.23 grams of copper are required according to stoichiometry and the mole ratio from the balanced equation.

Explanation:

To determine the number of grams of copper required to produce 432 grams of silver in the reaction with silver nitrate, we must first understand the balanced chemical equation:

Cu(s) + 2 AgNO3(aq) → Cu(NO3)2(aq) + 2 Ag(s)

From this balanced equation, we can see that one mole of copper reacts with two moles of silver nitrate to produce one mole of copper(II) nitrate and two moles of silver. To solve the problem, we need three molar masses: that of copper (63.55 g/mol), silver nitrate (169.88 g/mol), and silver (107.87 g/mol). Using stoichiometry, we can set up the calculation as follows:

432 g Ag x (1 mol Ag / 107.87 g Ag) x (1 mol Cu / 2 mol Ag) x (63.55 g Cu / 1 mol Cu) = grams of Cu required

By calculating, we get:

432 g Ag / 107.87 g/mol Ag = 4.004 mol Ag

4.004 mol Ag x 1 mol Cu / 2 mol Ag = 2.002 mol Cu

2.002 mol Cu x 63.55 g/mol Cu = 127.23 g Cu

Therefore, 127.23 grams of copper are required to produce 432 grams of silver when copper reacts with silver nitrate according to the balanced equation.

How much ammonia (nh3) is produced from two moles of nitrogen gas? 3h2 + n2 --> 2nh3?

Answers

the balanced equation for the reaction for the formation of ammonia is as follows
N₂ + 3H₂ ---> 2NH₃
stoichiometry of N₂ to NH₃ is 1:2
number of moles of N₂ reacted - 2 mol 
if 1 mol of N₂ reacts and forms 2 mol of NH₃
then when 2 mol of N₂ reacts it forms - 2 x 2 = 4 mol of NH₃
number of moles of NH₃ formed - 4 mol 
mass of NH₃ formed - 4 mol x 17 g/mol = 68 g

Copper crystallizes in a face centered cubic lattice. if the edge of the unit cell is 351 pm what is the radius of the copper atom

Answers

Final answer:

The atomic radius of a copper atom in a face-centered cubic lattice with an edge length of 351 pm is approximately 123.675 pm.

Explanation:

Calculating the Atomic Radius in a Face-Centered Cubic Lattice

For copper, which crystallizes in a face-centered cubic (FCC) lattice structure, we can calculate the atomic radius if we know the edge length of its unit cell. Given that the edge of the FCC unit cell is 351 pm, we can use the fact that the diagonal across the faces of the cube (√2 times the edge length) is equal to four times the atomic radius in an FCC lattice. This is because in an FCC structure, atoms touch along the face diagonal.

To calculate the atomic radius, we use the formula:

4r = √2 × edge length

Therefore: r = (√2 × 351 pm) / 4

r ≈ (1.414 × 351 pm) / 4

r ≈ 494.7 pm / 4

r ≈ 123.675 pm

The approximate radius of a copper atom in an FCC lattice is 123.675 pm.

In the Bronsted-Lowry model of acids and bases, a(n) _____ is a hydrogen donor and a(n) _____ is a hydrogen acceptor.

Answers

In the Bronsted-Lowry model of acids and bases, a(n) _acid____ is a hydrogen donor and a(n) _base____ is a hydrogen acceptor.

In the Bronsted-Lowry model of acids and bases, an acid is a hydrogen donor and a base is a hydrogen acceptor.

What is Bronsted-Lowry acid and base?

Bronsted-Lowry acid is any substance that donates a proton or hydrogen ion while a Brønsted-Lowry base is that which accepts an hydrogen ion.

Based on this definition, it can be said that a Brønsted-Lowry acid must possess hydrogen ion(s) to donate.

Examples of Brønsted-Lowry acid are as follows:

HClHCNH2SO4

Therefore, in the Bronsted-Lowry model of acids and bases, an acid is a hydrogen donor and a base is a hydrogen acceptor.

Learn more about Brønsted-Lowry acid and base at: https://brainly.com/question/14407412

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