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发表于 29-5-2010 03:15 PM
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本帖最后由 silent91 于 29-5-2010 03:17 PM 编辑
solubility are in term of mol dm^-3.
Pb(OH)2 (s) -> Pb2+ (aq) + 2OH- (aq)
then, Ksp of Pb(OH)2 = [Pb2+][OH-]^2
let x is solubility.
then,Ksp of Pb(OH)2 = [x][2x]^2 = (x)(4x^2) = 4x^3
=> 1x10^-18 = 4x^3
四月一日的小皮 发表于 28-5-2010 10:22 PM 
why concentration of OH- no need consider concentration of OH- in water??? |
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发表于 29-5-2010 11:16 PM
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why concentration of OH- no need consider concentration of OH- in water???
silent91 发表于 29-5-2010 03:15 PM
remember that [Oh-][h+]= 10^-14???
in pure water, [oh-]=[h+]=10^-7=0.0000001
since it's value doesnt effect the [Oh-] of Pb(OH)2 as X + 10^-7 = X. |
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发表于 30-5-2010 02:54 PM
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remember that [Oh-][h+]= 10^-14???
in pure water, [oh-]=[h+]=10^-7=0.0000001
since it's value ...
四月一日的小皮 发表于 29-5-2010 11:16 PM
but after calculation, results of concentration of OH- is 10^-6
can consider near to 10^-7 woh~ |
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发表于 31-5-2010 10:03 PM
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a container 3.40g ammonia(NH3)gas.
how many moles of ammonia molecules are there? |
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发表于 31-5-2010 11:49 PM
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A 250cm3 of gaseous mixture of entane and ethene was reacted with bromine at stp.If 1.34g of bromine was used,determine the percentage of ethene in the mixture.(bromine:80) |
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发表于 1-6-2010 11:31 AM
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发表于 1-6-2010 03:13 PM
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回复 629# 四月一日的小皮
没关系,你已经很厉害了~ |
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发表于 1-6-2010 08:48 PM
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argh,遮体不会啊~
a mixture containing 5.00g each of ch4, c2h4 and c4h10, is placed in a 1.50dm^3 flask at a temperature of 0 celcius.
A)calculate the partial pressure of each of the gases in the mixture
B)calculate the total pressure of the mixture
有人可以解释给我吗?谢谢哦~ |
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发表于 1-6-2010 11:27 PM
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argh,遮体不会啊~
a mixture containing 5.00g each of ch4, c2h4 and c4h10, is placed in a 1.50dm^3 f ...
qwer0909 发表于 1-6-2010 08:48 PM
这一题需要运用到两个equation:
1.ideal gas equation。
2. dalton's law of independence.
1->运用ideal gas equation找出Pressure
PV=nRT
P= pressure in Pa
V= volume in m3
n= mole of molecule = m/ Mr
R= gas constant = 8.314 J K-1 mol-1
T= temperature in K
P= mRT/VMr
5.00g each of ch4, c2h4 and c4h10, is placed in a 1.50dm^3 flask at a temperature of 0 celcius.
P of CH4 = 5 ( 8.314 )( 0 + 273 ) / (1.5 x 10^-3)(12+4)
= 5 ( 8.314 )( 273 ) / ( 16 )( 1.5x10^-3 )
= 472.9kPa
P of C2H4 = 5 ( 8.314 )( 273 ) / (1.5x10^-3)( 28 )
= 270.2kPa
P of C4H10 = 5 ( 8.314 )( 273 ) / (1.5x10^-3)( 58 )
= 130.4kPa
2->=加起来咯!
Total P = ( 472.9 + 270.2 + 130.4 )kPa
= 8.74 x 10^2 kPa |
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发表于 2-6-2010 04:32 PM
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2>> let mole of Zinc is M,r.a.m is Mr,Avogrado constant is L,mass of zinc is m....
mole of zinc,M = m/Mr.....(1)
mole of zinc,M = no. of atom (=1)/L
M = 1 / L .....(2)
=> m/ Mr = 1 /L
DENSITY, D = m / V
D = Mr / (V x L )
(D x L) / Mr = 1 / V
V = Mr / (D x L ) = 65.37 / 7.14L
这边不是很明白 为什么density会等于 Mr/ (V x L) ? |
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发表于 2-6-2010 10:53 PM
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2>> let mole of Zinc is M,r.a.m is Mr,Avogrado constant is L,mass of zinc is m....
mole of zinc,M = ...
endless_story 发表于 2-6-2010 04:32 PM
就是运用
m/Mr = 1/L
m = Mr/L .....(1)
D = m /V ..... (2)
(1)->(2): D = (1 / V)(Mr / L ) |
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发表于 3-6-2010 09:12 PM
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这一题需要运用到两个equation:
1.ideal gas equation。
2. dalton's law of independence.
1->运 ...
四月一日的小皮 发表于 1-6-2010 11:27 PM 
恩,这个会来,谢谢哦~ |
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发表于 3-6-2010 09:17 PM
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这题好难啊,可以教我吗?
bromine consists of two isotopes 79br and 81br, with relative abundance 50.5% and 49.5% respectively.Apart frm the peaks at 79 and 81 , due to br+ ions frm these two isotopes, the mass spectrum of bromine also shows peaks at 158, 160, and 162.
a)what are the ions that gives rise to these three peaks in the spectrum of bromine?(这题我会)
b)the relative heights of these three peaks are in the ratio 1:2:1.can you explain this ratio, taking into account your answer to part(a) and the information about the relative abundance of the two bromine isotopes?
b的我不会啊,你可以帮我解释吗?谢谢~ |
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发表于 3-6-2010 11:16 PM
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本帖最后由 四月一日的小皮 于 3-6-2010 11:19 PM 编辑
这题好难啊,可以教我吗?
bromine consists of two isotopes 79br and 81br, with relative abundance 50. ...
qwer0909 发表于 3-6-2010 09:17 PM
158 => 79br-79br
160 => 79br-81br and 81br-79br
162 => 81br-81br
relative abundance calculation:
158 160 162
(0.505)(0.505) 2(0.505)(0.495) (0.495)(0.495)
= 0.255 = 0.500 = 0.245
ratio 0.255/0.245 = 1.04 0.500/0.245 = 2.04 0.245/0.245 = 1
= 1 = 2 = 1 |
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发表于 5-6-2010 12:32 AM
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这边有两题题目我做到答案,但小数点不对。
1.What is the density (gdm-3)of propane,C3H8,at s.t.p?
My Solution:M/V=1.01x10^5 x ((44/(8.31)(273))
=1958.9....duno wht unit bt the ans given is 1.96gdm-3
2.The density of a gas at 25C & 1.05x10^5 Pa is 1.19gdm-3.Calculate the relativemolecular mass of the gas??
The ans given is 28.1 but i calculate get 0.028,me also duno my decimal where got problem.Help me anyone |
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发表于 5-6-2010 02:19 AM
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这边有两题题目我做到答案,但小数点不对。
1.What is the density (gdm-3)of propane,C3H8,at s.t.p?
My ...
lokejiunnwoei92 发表于 5-6-2010 12:32 AM
你的R是8.31JK-1mol-1,
是8.31 m3  Pa K−1 mol−1 ...
你应该用0.0821 L atm K-1 mol-1,
就是0.0821 dm3 atm K-1 mol-1.
1->题目要求你找g dm-3,不是g m-3。
2->题目已经给你density in g dm-3,你就应该用R=0.0821.
请记住,unit很重要。 |
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发表于 5-6-2010 10:50 AM
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我想问关于mass spectrum 的东西,
像chlorine gas 在mass spectrum 里面,
question is how many TYPES of molecules can be found in d mass spectrum?
学校老师告诉我3个,补习老师告诉我4个。 |
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发表于 5-6-2010 11:00 AM
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我想问关于mass spectrum 的东西,
像chlorine gas 在mass spectrum 里面,
question is how many TYPES o ...
白精灵74 发表于 5-6-2010 10:50 AM 
我列出来看下
会有:
35Cl-35Cl, 35Cl-37Cl, 37Cl-35Cl, 37Cl-37Cl
会有4种
但是mass spectrum只会出现3条线罢了
因为35Cl-37Cl和37Cl-35Cl是一样的分子来的 |
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发表于 5-6-2010 08:20 PM
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Enthalpy values for elements of sodium, chlorine, & sodium hydroxide are given as follow.
I.E of Na =+496
E.A of Cl = -349
enthalpy of atomaisation of Na = +108
enthalpy of atomaisation of Cl = +121
enthalpy of formation of NaCl = -411
by using the enthalpy daa above, calculate (delta H) for the reaction
NaCl (s) ---------> Na+ (g) + Cl- (g)
这课不是很明白,需要解释~谢谢~ |
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发表于 5-6-2010 09:45 PM
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我想问关于mass spectrum 的东西,
像chlorine gas 在mass spectrum 里面,
question is how many TYPES o ...
白精灵74 发表于 5-6-2010 10:50 AM
没错,是有4种。
orientation difference也可以算是一种。
像35Cl-37Cl,是一种;37Cl-35Cl,是一种。
Lov瑜瑜4ever说的是对的。
Enthalpy values for elements of sodium, chlorine, & sodium hydroxide are given as follow.
I.E of Na ...
silent91 发表于 5-6-2010 08:20 PM 
这一题应该和Born-Haber Cycle有关系。
前提是所有molecule是以1 mole来计算,例如enthalpy of formation of NaCl是以formation of 1 mole of NaCl来算的。
其实是这样的...
Na (s) + 1/2 Cl2(g)-> NaCl(s)
上面这个用enthalpy of formation 。
Na(s) -> Na(g)
1/2Cl2(g) -> Cl(g)
上面这个用enthalpy of atomisation of Na和Cl#。
(#注意前提)
Na(g) -> Na+(g) + e-*
Cl (g) + e-* -> Cl-(g)
上面这个用I.E of Na 和E.A of Cl。(*代表transfer e- occur)
回答这题可以用画born-haber cycle的方法(这里我show不到),
或者是cancellation的方法(only用于解释)。
Na (s) + 1/2 Cl2(g)-> NaCl(s) @H1=-411
Na(s) -> Na(g) @H2=+108
1/2Cl2(g) -> Cl(g) @H3= +121
Na(g) -> Na+(g) + e-* @H4=+496
Cl (g) + e-* -> Cl-(g) @H5=-349
@H2和@H3加起来。
Na(s)+ 1/2Cl2(g) -> Na(g)+ Cl(g)
@H6= +108+121 = = +229
@H4和@H5加起来。e-就cancel掉了。
Na(g)+ Cl (g) + e-* -> Na+(g)+Cl-(g) + e-*
Na(g)+ Cl (g) -> Na+(g)+Cl-(g)
@H7= +496+(-349)=+147
过后就把@H6和@H7加起来。Na(g)和Cl(g)cancel掉了。
Na(s)+ 1/2Cl2(g) -> Na+(g)+Cl-(g)
@H8=+229+147=+376
把@H1倒反来,@H变positive:
NaCl(s)-> Na (s) + 1/2 Cl2(g) @H9=+411
最后把@H8和@H9加起来, Na (s)和1/2 Cl2(g)cancel掉:
NaCl (s) ---------> Na+ (g) + Cl- (g)
@H= +411+376=+787
这个解释有点乱,tat's why只用于解释。 |
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