Stereochemistry - R S Configuration & Fischer Projections - By The Organic Chemistry Tutor
Transcript
| 00:0-1 | in this video , we're going to talk about steroid | |
| 00:02 | chemistry . We're going to talk about how to assign | |
| 00:05 | Rs configuration to Cairo centres , including fisher projections and | |
| 00:10 | a lot of other examples as well . So let's | |
| 00:12 | start with this one , assign a R . Or | |
| 00:14 | as configuration to each Carlson as shown below . So | |
| 00:18 | first , what is a carol center ? A Cairo | |
| 00:21 | center or a Cairo carbon is a carbon atom that | |
| 00:25 | has four different groups attached to it . In this | |
| 00:28 | case , These are the four different groups . Now | |
| 00:33 | , in order to assign that carol center A . | |
| 00:36 | R . S configuration , we need to rank those | |
| 00:39 | four groups using the con single pre log process grouping | |
| 00:46 | will one , it's going to have the highest priority | |
| 00:50 | and the way we determine priorities based on atomic number | |
| 00:54 | . So looking at these four atoms bro mean chlorine | |
| 00:58 | , carbon and hydrogen , which of these four atoms | |
| 01:01 | have the highest atomic number based on the periodic table | |
| 01:05 | . So if you're using the periodic table , you'll | |
| 01:07 | find that grooming has the highest atomic number . So | |
| 01:12 | this is going to be group number one . It | |
| 01:13 | has the highest priority chlorine has the second highest atomic | |
| 01:17 | number relative to bring me . So that's gonna be | |
| 01:21 | group # two . Carbon has an atomic number of | |
| 01:24 | 12 hydrogen has the lowest atomic number of all of | |
| 01:27 | the elements in the product table . It has an | |
| 01:30 | atomic number of one . So it's always going to | |
| 01:32 | be a group . And before now , before we | |
| 01:36 | can count it , We need to make sure a | |
| 01:39 | group # four is in the back or it's in | |
| 01:41 | the hatch wedge , which it is in this case | |
| 01:45 | . So we can count from one , 2 , | |
| 01:46 | 2 , 2 , 3 . So notice that we're | |
| 01:49 | rotating in the counter clockwise direction . Whenever that happens | |
| 01:54 | , you need to assign an S . Configuration if | |
| 01:58 | grouping before is in the back . So that's the | |
| 02:01 | configuration for this particular carl center . Now let's focus | |
| 02:05 | on the Cairo center on the right . And if | |
| 02:07 | you want to pause the video to try that example | |
| 02:10 | , feel free to do so this burning adam , | |
| 02:13 | we know it's gonna be number one chlorine is going | |
| 02:16 | to be too . The method group will be group | |
| 02:19 | number three and ages four , so counting it from | |
| 02:22 | 1 to 2 to three . This time we are | |
| 02:25 | rotated in a clockwise direction . So this is going | |
| 02:28 | to have the our configuration . Now , looking at | |
| 02:34 | these two molecules , what is the relationship between them | |
| 02:39 | ? Would you describe them as constitutional , ice hammers | |
| 02:43 | and nancy Morales . Die stormers , miso compounds . | |
| 02:47 | How would you describe these two compounds ? Now notice | |
| 02:52 | that these two molecules are mirror images of each other | |
| 02:57 | , therefore they are known as . And the and | |
| 03:01 | commerce and consumers are a special type of stereo iceman | |
| 03:10 | . A stereo I smell like any other . I | |
| 03:12 | simmer have the same chemical formula . They are connected | |
| 03:15 | the same way , but notice that the way the | |
| 03:18 | atoms are arranged in space , it's a range of | |
| 03:22 | space differently . This carbon and that carbon they're connected | |
| 03:26 | to the same for groups . But the way those | |
| 03:29 | four groups are arranged in space , they're not the | |
| 03:31 | same here . Chlorine is on the left side here | |
| 03:34 | , it's on the right side . So they are | |
| 03:35 | arranged in space differently , which makes it a certain | |
| 03:38 | type of steroid iceberg , die streamers and consumers cis | |
| 03:44 | trans geometric iceman's . Those are all sterilizers . But | |
| 03:49 | I know trimmers , they're mirror images of each other | |
| 03:52 | and that's how you can distinguish them from the customers | |
| 03:58 | . Another feature of an answer is that they have | |
| 04:00 | the opposite configuration at the karl center here , the | |
| 04:03 | configuration . We determine it to be us here . | |
| 04:06 | It's our Mhm . Now let's work on some more | |
| 04:10 | examples for the sake of practice . So go ahead | |
| 04:14 | and assign the R and S configuration to each Kyle | |
| 04:20 | center . I'm going to draw . So let's put | |
| 04:25 | an ethyl group here . Let's add a hydrogen a | |
| 04:32 | broom in adam and let's put a hydroxy group . | |
| 04:37 | So go ahead and determined the configuration at this carbon | |
| 04:42 | . And so while you do that , I'm gonna | |
| 04:44 | write up another one . Yeah , so let's start | |
| 05:09 | with the first one . The first thing we need | |
| 05:11 | to do is determine which group has the highest priority | |
| 05:15 | . So we know it's going to be booming next | |
| 05:18 | . If we compare oxygen to carbon and hydrogen , | |
| 05:22 | we know oxygen is going to have a higher atomic | |
| 05:24 | number . The atomic number for uh oxygen is eight | |
| 05:28 | for carbon at six . So this is going to | |
| 05:30 | be number two , three . And then hydrogen is | |
| 05:32 | always for the hydrogen is in the back , which | |
| 05:35 | is good . So we're going to just go from | |
| 05:37 | 1-2 to 3 . And so for this one , | |
| 05:40 | we have the r configuration , we're rotating clockwise or | |
| 05:46 | in the direction of a clock . Now for the | |
| 05:49 | next one , hydrogen is going to be grouping before | |
| 05:52 | here we have oxygen , carbon , carbon oxygen wins | |
| 05:56 | . So that's gonna be number one . Next notice | |
| 06:00 | that these two carbons , they have the same atomic | |
| 06:03 | number . So if we move on to the next | |
| 06:06 | group here , we have carbon versus hydrogen carbon winds | |
| 06:10 | . So the ethnic group has a higher priority than | |
| 06:13 | the method group . So if we counted from 1 | |
| 06:18 | to 2-3 , notice that were rotated in a clockwise | |
| 06:22 | direction , But group # four , it's not in | |
| 06:26 | the back , it's in the front , it's not | |
| 06:28 | on the dash . This time it's on the solid | |
| 06:31 | wedge . So because it's on a solid wedge or | |
| 06:35 | it's in the front coming out of the paper , | |
| 06:38 | we need to rotate it . So just switch the | |
| 06:41 | configuration and it's equivalent to putting it back to the | |
| 06:45 | it's putting group before in the back . So it | |
| 06:48 | was all right . But now it's s so that's | |
| 06:51 | the configuration for this carl center . So anytime H | |
| 06:54 | is in the front simply counted from 1 to 23 | |
| 06:57 | And then reverse your answer number two . Name the | |
| 07:02 | following compounds using the R . S . System for | |
| 07:05 | stereo is MERS . So first let's identify the carl | |
| 07:10 | center . So let's focus on its carbon . That | |
| 07:13 | carbon has a burning hydrogen , a method group and | |
| 07:17 | an ethyl group . So it has four different groups | |
| 07:19 | which makes the Cairo center . Now let's rank those | |
| 07:22 | groups , Bromine has the highest atomic number . That's | |
| 07:25 | gonna be number one . We know S . O | |
| 07:28 | . Has a higher priority than metal . So this | |
| 07:31 | will be too that's gonna be three . Age is | |
| 07:33 | gonna be four . So going from 1 to 2 | |
| 07:37 | to 3 . We can see that It's going in | |
| 07:41 | our direction . And when you count from 1-2 to | |
| 07:44 | 3 , Ignore four . Now ask you counted . | |
| 07:49 | We're going to focus on four . four is in | |
| 07:52 | the front , it's not in back which means we | |
| 07:54 | need to reverse it so it's going counter clockwise . | |
| 07:58 | Which means the configuration is s let's put the S | |
| 08:04 | . Configuration here . Now in order to name it | |
| 08:09 | , we need to count the carbons in the parent | |
| 08:12 | chain . So we're gonna count in this direction . | |
| 08:15 | So we have a four carbon parent chain . We're | |
| 08:18 | gonna be dealing with beauty . Yeah . So first | |
| 08:22 | we need to write the configuration of the carl center | |
| 08:25 | which is s we're going to close the in parentheses | |
| 08:29 | and then it's going to be we have a blooming | |
| 08:31 | on carbon . To so to Bruno and for four | |
| 08:35 | cardinal cane that's going to be butane . So it's | |
| 08:38 | s to burma butane , that's how we can name | |
| 08:42 | this particular stereo Eisenberg . Now let's move on to | |
| 08:46 | the next one . So here we have to Cairo | |
| 08:51 | centers and you can check it . Here we have | |
| 08:57 | one group 23 relative to this carbon . This is | |
| 09:01 | the fourth group . If we focus on the second | |
| 09:04 | carl center , this is one group to the ethyl | |
| 09:08 | stree And that's the 4th group . So let's focus | |
| 09:14 | on the first carol center . This one . So | |
| 09:18 | we're comparing a chlorine atom , hydrogen , carbon , | |
| 09:21 | carbon . So if we look at the first item | |
| 09:25 | that's connected to that carol center , we see that | |
| 09:28 | chlorine has the highest atomic number . We don't look | |
| 09:31 | at growing because it's not the first atom attached to | |
| 09:35 | this Carlson . So we look at it from a | |
| 09:38 | once one basis . So this chlorine has a higher | |
| 09:42 | atomic number than that carbon . So this is going | |
| 09:45 | to be group # one . Now , for group | |
| 09:49 | No two , We know HS # four . So | |
| 09:52 | we got to compare these two . Here , we | |
| 09:56 | have a carbon and carbon . And then after that | |
| 09:59 | carbon is a hydrogen here , there's a broom in | |
| 10:02 | this is going to win . So this entire group | |
| 10:06 | is group number three , which makes the matter group | |
| 10:14 | . Actually take that back . This is to this | |
| 10:17 | is # three . This has a higher priority than | |
| 10:19 | the method group . So now we can count it | |
| 10:25 | from 1-2 to 3 . And so that's going to | |
| 10:29 | be the our configuration . So let's put our here | |
| 10:38 | and now let's focus on the next Cairo center . | |
| 10:44 | So bro , main hydrogen carbon , carbon , brahman | |
| 10:48 | is going to have the highest atomic number . So | |
| 10:50 | that's one , eight should be four . So now | |
| 10:53 | let's compare these two . So those two carbon atoms | |
| 10:56 | are the same . Next we have a chlorine versus | |
| 10:58 | a carbon . The client is going to win . | |
| 11:02 | So this whole group will be group number two And | |
| 11:05 | the effort group is gonna be number three . So | |
| 11:09 | going from 1 to 2-3 , we're going in our | |
| 11:13 | direction , but age is in the front , we're | |
| 11:15 | gonna have to reverse it , making it S so | |
| 11:24 | this is us now that we've assigned the configuration to | |
| 11:30 | each carol center . We can name this theory I | |
| 11:32 | smart , so we need to number it from left | |
| 11:36 | to right . So the substitutions will be on 2 | |
| 11:39 | , 3 as opposed to 34 . Now on carbon | |
| 11:49 | to we have the R configuration . So this is | |
| 11:51 | going to be to our And on carbon three we | |
| 11:54 | have the s . configuration . So this is going | |
| 11:57 | to be three s . Now we need a comment | |
| 12:00 | between them and then we need to put the bromo | |
| 12:03 | and the chlor a group in alphabetical order . So | |
| 12:06 | B comes before . See this is going to be | |
| 12:09 | three burma , It's on carbon three chlorine and carbon | |
| 12:13 | too . So we're gonna have to claro And for | |
| 12:17 | five carbon out cain , that's going to be painting | |
| 12:22 | . So this is to R three S . Three | |
| 12:24 | bergamo to chloral pending . So that's how we can | |
| 12:27 | name at this particular stereo iceberg . Now , here's | |
| 12:33 | the question for you how many stereo ISIS members are | |
| 12:36 | possible if you have one carl center and how many | |
| 12:40 | are possible if you have to carl centers . So | |
| 12:45 | if you have one Carl Center , you can have | |
| 12:51 | the S . Ice summer or you can have the | |
| 12:54 | iceman . So there's two possibilities . The equation that | |
| 12:58 | will give you the number of steroids members is to | |
| 13:00 | to the end where n . Is the number of | |
| 13:02 | carl centers . So in this case and is one | |
| 13:05 | to the first power is too . So for one | |
| 13:08 | Carl Center , There are two possible stereo I summers | |
| 13:12 | . Now , what if we have to carol centers | |
| 13:18 | ? How many stereo I Summers are possible ? Well | |
| 13:23 | , it's going to be an S2 , so it's | |
| 13:26 | gonna be two squared , two squared is two times | |
| 13:29 | two , which is four . So we have four | |
| 13:32 | possibilities . The first possibility is if both carl centers | |
| 13:36 | are are the second one is if one is our | |
| 13:39 | I mean if the first ones are in the second | |
| 13:41 | one is S or if the first ones asked the | |
| 13:44 | second ones are Or if they're both fast . So | |
| 13:47 | those are the four possibilities . Or the four sterilizers | |
| 13:51 | that are possible if you have to Kyle centers . | |
| 13:55 | So the number of steroids MERS is going to be | |
| 13:58 | to to the end carol centers . Number three . | |
| 14:02 | The chemical structure of cholesterol is shown below . How | |
| 14:06 | many stereo customers are possible for this molecule , so | |
| 14:11 | feel free to take a minute and try this problem | |
| 14:14 | . So this right here is a carl center . | |
| 14:17 | We have an O . H . Group , there | |
| 14:19 | is an invisible hydrogen , but now it's invisible and | |
| 14:22 | then this side is different than that side . This | |
| 14:27 | side is closer to the double bond . This other | |
| 14:29 | side has some other group . So these two sides | |
| 14:34 | are different , which makes this a Carlson . Now | |
| 14:40 | this carbon is also a car center has four different | |
| 14:42 | groups . Here we have a method group here is | |
| 14:46 | a secondary carbon , a tertiary carbon and this tertiary | |
| 14:50 | carbon . This tertiary carbon is close to the double | |
| 14:53 | bond . This one is not so they're different which | |
| 14:57 | makes this a Cairo center here is another carl center | |
| 15:05 | , this is one group , this is another , | |
| 15:07 | this one's another and there is a hydrogen attached to | |
| 15:10 | it and we could put that hydrogen here . This | |
| 15:19 | carbon here is not Cairo . Whenever you see a | |
| 15:22 | carbon with two bonds and that's it . It's a | |
| 15:25 | ch two Carden , which means it doesn't have for | |
| 15:28 | different groups because these are the same . So that | |
| 15:31 | is not a Cairo carbon . So it's best to | |
| 15:35 | focus on the tertiary carbons and the coronary carbons . | |
| 15:40 | This is a tertiary carbon , It's attached to three | |
| 15:43 | other carbons and there's hydrogen attached to it . So | |
| 15:47 | that is another carl center , here's another tertiary carbon | |
| 15:55 | . It has three other carbons , all of which | |
| 15:57 | are different . And there's a hydrogen here too . | |
| 16:04 | Now this carbon here is coronary . It's attached to | |
| 16:08 | four different carbon atoms . So that's another Cairo carbon | |
| 16:17 | . This tertiary carbon is carl too . There's a | |
| 16:19 | hydrogen here and this carbon is tertiary and its Cairo | |
| 16:28 | , This is the group one , this is another | |
| 16:30 | group , This is another group . And then the | |
| 16:33 | hydrogen is the 4th group . So let's put that | |
| 16:42 | hydrogen on the hatch wedge . Now this carbon here | |
| 16:46 | is Treasury , but it's not carbon because It doesn't | |
| 16:50 | have four different groups . These two method groups are | |
| 16:54 | the same . That's cholesterol has a total of 1 | |
| 17:00 | , 2 , 3 , 4 , 567 eight Kyle | |
| 17:06 | centers . So because cholesterol has eight carol centers , | |
| 17:10 | it's gonna have to to the eight stereo prisoners To | |
| 17:14 | to the eight is 2-4 times 2-4 , four plus | |
| 17:17 | four is eight . If you multiply 24 times two | |
| 17:20 | times two is four times two is eight times two | |
| 17:22 | is 16 . You got 16 times 16 which is | |
| 17:26 | 256 . So this is a number of steroids murders | |
| 17:31 | that are possible for this particular molecule . Number four | |
| 17:36 | determine the absolute configuration of each carl center and name | |
| 17:40 | each Fischer projection shown below when dealing with fisher projections | |
| 17:45 | . It's easy to determine the carl center . So | |
| 17:49 | we have to carol centers , which means that we | |
| 17:51 | have four possible sterilizers for this particular structure . Now | |
| 17:57 | , before we determine the absolute configuration of each car | |
| 17:59 | center , let's talk about fish projections . So let's | |
| 18:03 | say if we have this particular Fischer projection , let's | |
| 18:10 | make this an ethnic group . And let's say this | |
| 18:14 | is hydrogen . This is ohh , we need to | |
| 18:17 | realize is that the groups on the horizontal part of | |
| 18:21 | the official projection there in the front . So you | |
| 18:25 | can redraw the structure like this if you want . | |
| 18:29 | They're coming out of the page . And so they're | |
| 18:31 | on the solid wedge . Yeah , these two groups | |
| 18:38 | they're on the dash or the hatch wedge . So | |
| 18:43 | they're going into the page . You can view them | |
| 18:48 | as being in the back . So make sure you | |
| 18:51 | understand that . Now hydrogen is typically on the side | |
| 18:54 | , which means that as a group number four , | |
| 18:56 | you're gonna have to reverse it when determining the configuration | |
| 19:00 | . So keep that in mind anytime google before he's | |
| 19:04 | in the front , you need to reverse it . | |
| 19:08 | So let's begin by determining the configuration of this carol | |
| 19:10 | center . Yeah , the hydroxy group is going to | |
| 19:14 | be group number one oxygen beats these two carbon atoms | |
| 19:19 | now comparing those two carbon atoms , they're the same | |
| 19:22 | . But here we have a booming here is the | |
| 19:24 | hydrogen . So this group has a higher priority than | |
| 19:28 | the method group . So this will be group number | |
| 19:30 | two , The metal will be three , and then | |
| 19:33 | hydrogen is always for if it's there , So going | |
| 19:38 | from 1 to 2-3 , we're going in a clockwise | |
| 19:42 | direction . So that's our but h remember h when | |
| 19:46 | it's in the horizontal part , it's like being on | |
| 19:48 | the solid wedge ages in the front , so we | |
| 19:51 | got to reverse it , so we're gonna get s | |
| 19:57 | so we have the S configuration for that carl center | |
| 20:03 | Now , for the next one . So we're going | |
| 20:05 | to focus on this carol . Senate Bro . Mean | |
| 20:09 | , is gonna be group # one has the highest | |
| 20:11 | priority . Next were compared to method group with this | |
| 20:15 | group . So we have carbon , it's a carbon | |
| 20:19 | and then hydrogen to oxygen oxygen wins . So this | |
| 20:24 | entire group is going to be number two . Methodist | |
| 20:27 | three , H is four , So going from 1 | |
| 20:31 | to 2-3 , it looks like we're going in the | |
| 20:34 | S direction but if we reverse it it's going to | |
| 20:37 | be our so we have the R . Configuration here | |
| 20:44 | . Mhm . So now that we've assigned the absolute | |
| 20:49 | configuration to each car center , we can go ahead | |
| 20:52 | and name this particular molecule . So the hydroxyl group | |
| 20:57 | is going to have priority over the broom in groups | |
| 21:00 | . So we're gonna count it in a way that | |
| 21:03 | we give the hydroxy group the lower number . We | |
| 21:06 | want to give it a two instead of three . | |
| 21:07 | So we're gonna count in this direction . So on | |
| 21:15 | carbon to we have the S . Configuration . So | |
| 21:18 | this is going to be to us and on carbon | |
| 21:22 | three we have the R . Configuration . So three | |
| 21:24 | are Yeah and then We have a brahmin of carbon | |
| 21:30 | three . So this is gonna be three bromo any | |
| 21:33 | alcohol is can be part of the parent name and | |
| 21:36 | it's all carbon too . So it's gonna be too | |
| 21:38 | beating all because we have a four carbon chain . | |
| 21:43 | So two as three R three bromo to be , | |
| 21:45 | you know that's how we can name this particular fisher | |
| 21:47 | projection . Now let's try another example . Go ahead | |
| 21:58 | and name this fisher projection and determine the configuration at | |
| 22:02 | each cow center , just like we did before . | |
| 22:17 | So let's start with this one , Brahman is gonna | |
| 22:20 | be a group # one . This group with a | |
| 22:22 | chlorine atom , we know that's going to be too | |
| 22:25 | Method Astri Ages four , so going from 1 to | |
| 22:28 | 2 to three , ignoring four , this is going | |
| 22:31 | in the counter clockwise direction sets s but age is | |
| 22:35 | in the front , so we need to reverse it | |
| 22:38 | so we're gonna get arm For the 1st 1 . | |
| 22:45 | Now for the second carol center Chlorine is gonna be | |
| 22:49 | group # one . This entire group , It's number | |
| 22:52 | two , if we compare carbon to carbon , it's | |
| 22:55 | a tie at any carbon tube roaming roaming winds . | |
| 22:59 | So this is number two ethel's number three ages four | |
| 23:04 | . So going from 1 to 2 to three , | |
| 23:06 | skipping four , it appears to be art , but | |
| 23:09 | H is in the front , so we reverse it | |
| 23:11 | and we get the s configuration . So now that | |
| 23:18 | we have the configuration at both carl centers , we | |
| 23:21 | can name it . So we don't want to count | |
| 23:23 | in this direction because this will be three and that | |
| 23:27 | will be four . Rather , we want to count | |
| 23:29 | in this direction . So this will be too and | |
| 23:33 | this will be three . So we have a five | |
| 23:36 | carbon chain , so we didn't live painting . But | |
| 23:39 | first let's put let's focus on the configuration . So | |
| 23:45 | the configuration is our at carbon too . So we're | |
| 23:48 | gonna have to art and then it's US At carbon | |
| 23:52 | three . So 3 of us . And then we | |
| 23:58 | have a br on carbon too . And we need | |
| 24:01 | to put it in alphabetical order B comes before See | |
| 24:05 | . So this is going to be to Bruno . | |
| 24:07 | And then we have a cl on carbon three . | |
| 24:10 | So three chloral And then for the five carbon chain | |
| 24:14 | that's going to be repenting . So that's the nomenclature | |
| 24:18 | or the I . U . P . Economic nature | |
| 24:19 | for this particular fisher projection . It's two R three | |
| 24:22 | S two bromo three chloral panting . Now , let's | |
| 24:25 | work on a more challenging problem . So let's say | |
| 24:32 | this carol center has an ethnic group , a method | |
| 24:37 | group in the front . And let's put a chlorine | |
| 24:43 | group in the back . All right . And the | |
| 24:49 | hydrogen go ahead and assign the configuration to the Cairo | |
| 24:55 | carbon . Is it R . S . Now , | |
| 24:58 | this problem is different because hydrogen group number four is | |
| 25:02 | neither in the front nor is in the back . | |
| 25:06 | So , how do you assign the configuration in this | |
| 25:09 | situation ? Well , let's begin . We know that | |
| 25:12 | chlorine has the highest atomic number . So that's going | |
| 25:14 | to be group number one , estelle has more priority | |
| 25:18 | than metal . So , with those two methods three | |
| 25:22 | ages four . In a situation like this , there's | |
| 25:26 | a technique that you could use to assign the configuration | |
| 25:30 | , whatever group is in the back , put it | |
| 25:32 | in a circle . So I'm going to put one | |
| 25:34 | in the circle and you can put a small sub | |
| 25:37 | script B to indicate that what ? Seven in a | |
| 25:39 | circle ? It's in the back . Sometimes it could | |
| 25:42 | be in the front . So , but for now | |
| 25:45 | , whatever is in a circle . And this problem | |
| 25:46 | is in the back . Now , the other numbers | |
| 25:51 | 2 , 4 and three , you want to arrange | |
| 25:54 | them in the form of a triangle . Now , | |
| 25:57 | if you notice too is at the top . So | |
| 25:59 | let's put that at the top . Four is at | |
| 26:03 | the bottom left with respect to So let's put that | |
| 26:05 | here . three is on the bottom right Now , | |
| 26:10 | what we're gonna do is we're going to rotate this | |
| 26:12 | molecule in such a way that number four will be | |
| 26:16 | at the top or to us . So we're going | |
| 26:18 | to rotate it 120° clockwise . So one is still | |
| 26:25 | in a circle . Four has replaced too . Two | |
| 26:29 | is now with three ones and three years were formless | |
| 26:34 | . Now the next thing we're gonna do is we're | |
| 26:35 | going to flip the molecule as we flip it . | |
| 26:39 | two and 3 will move to the top Group . | |
| 26:42 | Number four is going to expel group number one . | |
| 26:46 | So now four is in a circle , one is | |
| 26:49 | beneath it And then three and 2 or at the | |
| 26:52 | top . Now four group before it's in the back | |
| 26:57 | because what's in a circle represents what's in the back | |
| 27:01 | . And so we can count from 1 to 2-3 | |
| 27:04 | . And this gives us the assessment . So the | |
| 27:08 | configuration of this carol center is s So that's the | |
| 27:12 | technique that you could use whenever group # four is | |
| 27:16 | not in the front or in the back . |
Summarizer
DESCRIPTION:
This video provides an overview of the stereochemistry of organic compounds and defines what exactly a chiral carbon center is. This video also shows you how to assign R and S configuration to a chirality center whenever the hydrogen (4th group) atom is in the front, back, or neither. It also discusses nomenclature - how to name organic compounds using R and S absolute configuration. It provides a lot of examples and practice problems.
OVERVIEW:
Stereochemistry - R S Configuration & Fischer Projections is a free educational video by The Organic Chemistry Tutor.
This page not only allows students and teachers view Stereochemistry - R S Configuration & Fischer Projections videos but also find engaging Sample Questions, Apps, Pins, Worksheets, Books related to the following topics.
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