一个简单的化学题(In English)Which volume(体积)of sulphur dioxide(二氧化硫)(at r.t.p.) is formed when 9.7g of zinc sulphide(硫化锌) is heated in air?2ZnS + 3 O2(氧气) --> 2ZnO + 2 SO2(二氧化硫)A 1.2 dm3(立方分

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一个简单的化学题(InEnglish)Whichvolume(体积)ofsulphurdioxide(二氧化硫)(atr.t.p.)isformedwhen9.7gofzincsulphide(硫化锌

一个简单的化学题(In English)Which volume(体积)of sulphur dioxide(二氧化硫)(at r.t.p.) is formed when 9.7g of zinc sulphide(硫化锌) is heated in air?2ZnS + 3 O2(氧气) --> 2ZnO + 2 SO2(二氧化硫)A 1.2 dm3(立方分
一个简单的化学题(In English)
Which volume(体积)of sulphur dioxide(二氧化硫)(at r.t.p.) is formed when 9.7g of zinc sulphide(硫化锌) is heated in air?
2ZnS + 3 O2(氧气) --> 2ZnO + 2 SO2(二氧化硫)
A 1.2 dm3(立方分米) B 2.4 dm3 C 3.6dm3 D 4.8dm3

一个简单的化学题(In English)Which volume(体积)of sulphur dioxide(二氧化硫)(at r.t.p.) is formed when 9.7g of zinc sulphide(硫化锌) is heated in air?2ZnS + 3 O2(氧气) --> 2ZnO + 2 SO2(二氧化硫)A 1.2 dm3(立方分
The mole mass of zinc sulphide is 65+32=97g/mol
so the amount of zinc sulphide is 9.7/97=0.1mol
2ZnS--2SO2 so the amount of sulphur dioxide is also 0.1mol
V=nVm=0.1mol*22.4L/mol=2.24L

计算过程:
分子量 ZnS 65+32=97
mol of ZnS = 9.7/97 = 0.1 mol
mol of SO2 = 0.1 mol
V of SO2 = 0.1 * 22.4 = 2.24 L = 2.24 dm3
比较近的是2.4 dm3
答案:B