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18.2e Calculating reaction free energy under nonstandard conditions

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Language: en

00:00:00.740
this question says a chemist fills a
00:00:03.500 00:00:03.510 reaction vessel with 9.6 atmospheres of
00:00:06.019 00:00:06.029 methane 0.699 atmospheres of oxygen 8.28
00:00:11.870 00:00:11.880 atmospheres of carbon dioxide and 1.74
00:00:14.959 00:00:14.969 atmospheres of hydrogen at a temperature
00:00:18.170 00:00:18.180 of 25 degrees C under these conditions
00:00:20.779 00:00:20.789 calculate the reaction free energy Delta
00:00:23.870 00:00:23.880 G for the following chemical reaction
00:00:26.390 00:00:26.400 and it asks us to use the thermodynamic
00:00:29.000 00:00:29.010 information the Ark's data tab and round
00:00:31.130 00:00:31.140 our answer to the nearest kilojoules so
00:00:33.170 00:00:33.180 essentially we have methane plus oxygen
00:00:34.700 00:00:34.710 yields carbon dioxide and hydrogen so
00:00:40.010 00:00:40.020 this is the reaction that we're going
00:00:41.990 00:00:42.000 after and we need to find Delta G for
00:00:44.119 00:00:44.129 the energy of it well there's a couple
00:00:47.000 00:00:47.010 things we need to do in order to solve
00:00:48.380 00:00:48.390 this the first thing is we need to
00:00:50.209 00:00:50.219 realize that Delta G is equal to Delta G
00:00:57.350 00:00:57.360 naught under standard conditions plus RT
00:01:02.590 00:01:02.600 ln Q and in this case we can look at Q
00:01:09.170 00:01:09.180 as the current conditions so this is
00:01:11.630 00:01:11.640 going to be products over reactants and
00:01:14.350 00:01:14.360 it's going to be under current
00:01:16.580 00:01:16.590 conditions as opposed to under standard
00:01:18.800 00:01:18.810 conditions so this is how we relate the
00:01:20.990 00:01:21.000 standard change in free energy with the
00:01:24.890 00:01:24.900 non standard under these current
00:01:26.719 00:01:26.729 conditions of this pressures of these
00:01:30.679 00:01:30.689 different gases but before we can do any
00:01:33.050 00:01:33.060 of this we need to find out what the
00:01:35.600 00:01:35.610 standard table in free energy is and to
00:01:39.590 00:01:39.600 do that we do it just like the previous
00:01:40.910 00:01:40.920 problem on this playlist it's just the
00:01:42.800 00:01:42.810 products minus reactants so Delta G
00:01:46.219 00:01:46.229 naught equals the summation of n times
00:01:50.420 00:01:50.430 the Delta G of formation it's an F for
00:01:56.899 00:01:56.909 the products minus the summation of n
00:02:01.120 00:02:01.130 Delta G formation of the reactants
00:02:06.240 00:02:06.250 and as I said there's a previous problem
00:02:08.559 00:02:08.569 on the playlist where we do exactly this
00:02:09.969 00:02:09.979 and you've also done this for entropy
00:02:11.440 00:02:11.450 and enthalpy so Delta G nought equals
00:02:15.180 00:02:15.190 well let's look at our first product at
00:02:17.559 00:02:17.569 co2 and there's only one of them so I'm
00:02:20.559 00:02:20.569 the table it's minus three hundred and
00:02:22.059 00:02:22.069 ninety four point four kilojoules
00:02:24.580 00:02:24.590 multiplied by one plus well the next
00:02:28.809 00:02:28.819 product is hydrogen that's an element so
00:02:31.120 00:02:31.130 it has a free energy of formation of
00:02:32.860 00:02:32.870 zero so we're not going to include it -
00:02:36.240 00:02:36.250 the first product is methane and if you
00:02:39.160 00:02:39.170 look up on the table there's one of them
00:02:41.080 00:02:41.090 so it's 1 times minus 50 point 5
00:02:45.150 00:02:45.160 kilojoules and again the second reactant
00:02:49.300 00:02:49.310 is an element so it's free energy of
00:02:52.539 00:02:52.549 formation is 0 so Delta G naught under
00:02:56.589 00:02:56.599 standard conditions here is equal to
00:02:59.380 00:02:59.390 minus three hundred and forty three
00:03:01.630 00:03:01.640 point nine kilojoules now we can use
00:03:06.430 00:03:06.440 this in order to find it under the non
00:03:09.490 00:03:09.500 standard conditions given in the problem
00:03:11.620 00:03:11.630 with Q well let's take a look at how
00:03:14.830 00:03:14.840 we're gonna do that the first thing is
00:03:16.690 00:03:16.700 are so are in joules is eight point
00:03:23.199 00:03:23.209 three one joules per K but there's a
00:03:26.530 00:03:26.540 problem
00:03:27.009 00:03:27.019 Delta G naught is in kilojoules so
00:03:30.879 00:03:30.889 instead of using eight point three one
00:03:32.620 00:03:32.630 we want to divide this by a thousand and
00:03:34.809 00:03:34.819 use zero point zero zero eight three one
00:03:38.640 00:03:38.650 kilojoules per K for R so this is gonna
00:03:43.629 00:03:43.639 be our R this is the standard one this
00:03:47.050 00:03:47.060 is in kilojoules T we're just gonna add
00:03:51.490 00:03:51.500 273 point one five to our twenty five
00:03:54.520 00:03:54.530 because s be in Kelvin so it's going to
00:03:56.500 00:03:56.510 be 298.15 cat so now we have R and we
00:04:02.680 00:04:02.690 have T what about Q so Q is equal to
00:04:08.680 00:04:08.690 products over reactants in this case
00:04:11.020 00:04:11.030 they're all gasses and we're given
00:04:12.490 00:04:12.500 pressures so it's the pressure of co2
00:04:15.750 00:04:15.760 times the pressure
00:04:19.900 00:04:19.910 I guess we don't need the time sign
00:04:21.580 00:04:21.590 pressure of hydrogen squared because
00:04:24.790 00:04:24.800 there's two of them divided by the
00:04:27.280 00:04:27.290 pressure of ch4 times the pressure of o2
00:04:33.550 00:04:33.560 so products over reactants accept its
00:04:36.730 00:04:36.740 non-standard conditions so we're gonna
00:04:38.410 00:04:38.420 use these atmospheres I'm gonna leave
00:04:40.420 00:04:40.430 the unit's out because Q is typically
00:04:42.400 00:04:42.410 given as a unitless so here
00:04:45.370 00:04:45.380 the first one is co2 we find its
00:04:47.710 00:04:47.720 pressure up here which is eight point
00:04:50.410 00:04:50.420 two eight times hydrogen we find it up
00:04:55.210 00:04:55.220 here which is one point seven four since
00:04:58.000 00:04:58.010 there are two hydrogen's we need to
00:04:59.860 00:04:59.870 square that divided by ch4 which is nine
00:05:05.740 00:05:05.750 point six times o2 which is point six
00:05:12.490 00:05:12.500 nine nine when you plug those all in you
00:05:17.260 00:05:17.270 find that Q equals three point seven
00:05:21.310 00:05:21.320 three five eight and I'm not gonna worry
00:05:24.190 00:05:24.200 about sig figs because it says round
00:05:25.630 00:05:25.640 your answer to the nearest kilojoule so
00:05:28.060 00:05:28.070 this is basically the value of Q when we
00:05:30.700 00:05:30.710 solve this problem well now we have all
00:05:33.070 00:05:33.080 of our variables we have Delta G naught
00:05:35.050 00:05:35.060 we found that from products minus
00:05:36.550 00:05:36.560 reactants we have R that's a constant we
00:05:39.159 00:05:39.169 just converted it to kilojoules per K
00:05:40.630 00:05:40.640 instead of joules per K we have T we
00:05:43.120 00:05:43.130 found the absolute temperature in Kelvin
00:05:44.560 00:05:44.570 and we have Q which is just products
00:05:46.720 00:05:46.730 over reactants so now Delta G equals
00:05:51.390 00:05:51.400 Delta G naught which is minus three
00:05:54.370 00:05:54.380 hundred and forty three point nine
00:05:56.610 00:05:56.620 kilojoules plus R in kilojoules 0.0083
00:06:02.320 00:06:02.330 one kilojoules per k times the
00:06:06.310 00:06:06.320 temperature 298 0.15 K times the Ln of Q
00:06:13.000 00:06:13.010 which is the Ln of three point seven
00:06:17.290 00:06:17.300 three five eight I'm just gonna do that
00:06:21.430 00:06:21.440 so there's a clear distinction between
00:06:22.830 00:06:22.840 the numbers and that's a seven even
00:06:25.659 00:06:25.669 though it's kind of hard to see
00:06:28.480 00:06:28.490 now we just solve this we use a
00:06:31.460 00:06:31.470 calculator to take the hour and then we
00:06:32.870 00:06:32.880 get Delta G equals minus three forty
00:06:35.630 00:06:35.640 three point nine kilojoules plus three
00:06:42.350 00:06:42.360 point two six five four kilojoules so
00:06:46.670 00:06:46.680 when we take the Ln of this number
00:06:47.870 00:06:47.880 multiply it by the 298 point one five
00:06:49.880 00:06:49.890 times the point zero zero eight three
00:06:51.500 00:06:51.510 one and we find Delta G for these
00:06:55.640 00:06:55.650 non-standard conditions is equal to two
00:06:59.330 00:06:59.340 the nearest kilojoule minus 341
00:07:02.770 00:07:02.780 kilojoules so this is how we can find
00:07:05.750 00:07:05.760 Delta G on non-standard conditions

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