1. Consider the following reaction: 2Al(s) + 6HCl(aq) > 2AlCl3(aq) +3H2(g) A 1.0792-g piece of aluminum...

When aluminum is placed in concentrated hydrochloric acid, hydrogen gas is produced. 2Al(s)+6HCl(aq)--->2AlCl3(aq)+3H2 What mass of...

When aluminum is placed in concentrated hydrochloric acid, hydrogen gas is produced. 2Al(s)+6HCl(aq)--->2AlCl3(aq)+3H2 What mass of Al(s) is required to produce 590.0 mL of H2(g) at STP? ? gAl

When aluminum is placed in concentrated hydrochloric acid, hydrogen gas is produced. 2Al(s) + 6HCl(aq) ----...

When aluminum is placed in concentrated hydrochloric acid, hydrogen gas is produced. 2Al(s) + 6HCl(aq) ---- 2AlCl3 (aq) + 3H2 (g) What volume of H2(g) is produced when 2.00 g of Al(s) reacts at STP?

Consider the following reaction carried out under constant pressure 6HCl(aq) + 2Al(s) → 3H2(g) + 2AlCl3(s)...

Consider the following reaction carried out under constant pressure 6HCl(aq) + 2Al(s) → 3H2(g) + 2AlCl3(s) Δ Hrxn = -4.04×102 kJ Calculate the heat associated with the complete reaction of 4.38×102 g of HCl with 67.0 g of Al. Show all work. A.-4.85×103 kJ B.-3.96×102 kJ C.-8.08×102 kJ D.-5.01×102 kJ E.-1.00×103 kJ

Aluminum chloride can be formed from its elements: (i) 2Al(s)+3Cl2(g) ⟶ 2AlCl3(s) ΔH°= ? Use the...

Aluminum chloride can be formed from its elements: (i) 2Al(s)+3Cl2(g) ⟶ 2AlCl3(s) ΔH°= ? Use the reactions here to determine the ΔH° for reaction(i): (ii) HCl(g) ⟶ HCl(aq) ΔH(ii) ° =−74.8kJ (iii) H2(g)+Cl2(g) ⟶ 2HCl(g) ΔH(iii) ° =−185kJ (iv) AlCl3(aq) ⟶ AlCl3(s) ΔH(iv) ° =+323kJ/mol (v) 2Al(s)+6HCl(aq) ⟶ 2AlCl3(aq)+3H2(g) ΔH(v) ° =−1049kJ Textbook says answer is −1407 kJ I keep getting -1049 kJ - 555 kJ + 646 kJ = -958 kJ. Please help! Is there a difference when kJ/mol...

Aluminum reacts with chlorine gas to form aluminum chloride via the following reaction: 2Al(s)+3Cl2(g)→2AlCl3(s) What is...

Aluminum reacts with chlorine gas to form aluminum chloride via the following reaction: 2Al(s)+3Cl2(g)→2AlCl3(s) What is the maximum mass of aluminum chloride that can be formed when reacting 23.0 g of aluminum with 28.0 g of chlorine?

Aluminum reacts with chlorine gas to form aluminum chloride via the following reaction: 2Al(s)+3Cl2(g)→2AlCl3(s) You are...

Aluminum reacts with chlorine gas to form aluminum chloride via the following reaction: 2Al(s)+3Cl2(g)→2AlCl3(s) You are given 10.0 g of aluminum and 15.0 g of chlorine gas. If you had excess chlorine, how many moles of of aluminum chloride could be produced from 10.0 g of aluminum?

Sulfuric acid dissolves aluminum metal according to the following reaction: 2Al(s)+3H2SO4(aq)→Al2(SO4)3(aq)+3H2(g) Suppose you wanted to dissolve...

Sulfuric acid dissolves aluminum metal according to the following reaction: 2Al(s)+3H2SO4(aq)→Al2(SO4)3(aq)+3H2(g) Suppose you wanted to dissolve an aluminum block with a mass of 15.1 g . What minimum mass of H2SO4 would you need? What mass of H2 gas would be produced by the complete reaction of the aluminum block?

Sulfuric acid dissolves aluminum metal according to the following reaction: 2Al(s)+3H2SO4(aq)--->Al2(SO4)3(aq)+3H2(g) Suppose you wanted to dissolve...

Sulfuric acid dissolves aluminum metal according to the following reaction: 2Al(s)+3H2SO4(aq)--->Al2(SO4)3(aq)+3H2(g) Suppose you wanted to dissolve an aluminum block with a mass of 14.2 g. A) What minimum mass of H2SO4 would you need? B) What mass of H2 gas would be produced by the complete reaction of the aluminum block?

Aluminum reacts with chlorine gas to form aluminum chloride via the following reaction: 2Al(s)+3Cl2(g)→2AlCl3(s) What is...

Aluminum reacts with chlorine gas to form aluminum chloride via the following reaction: 2Al(s)+3Cl2(g)→2AlCl3(s) What is the maximum mass of aluminum chloride that can be formed when reacting 12.0 g of aluminum with 17.0 g of chlorine? Express your answer to three significant figures and include the appropriate units. Thanks!

Aluminum reacts with chlorine gas to form aluminum chloride via the following reaction: 2Al(s)+3Cl2(g)→2AlCl3(s) You are...

Aluminum reacts with chlorine gas to form aluminum chloride via the following reaction: 2Al(s)+3Cl2(g)→2AlCl3(s) You are given 26.0 g of aluminum and 31.0 g of chlorine gas. A) If you had excess chlorine, how many moles of of aluminum chloride could be produced from 26.0 g of aluminum? B)If you had excess aluminum, how many moles of aluminum chloride could be produced from 31.0 g of chlorine gas, Cl2?