Reactions of 16e CpCo Half-Sandwich Complexes Containing a Chelating 1,2-Dicarba-closo-dodecaborane-1,2-dichalcogenolate Ligand with Ethynylferrocene and Dimethyl Acetylenedicarboxylate

The reaction of the 16e half‐sandwich complex [CpCo(S2C2B10H10)] (1 S; Cp: cyclopentadienyl) with ethynylferrocene in CH2Cl2 at ambient temperature leads to [CpCo(S2C2B10H9)(CH2CFc)] (2 S; Fc: ferrocenyl) and 1,2,4‐triferrocenylbenzene. In 2 S, B substitution occurs at the carborane cage in the posi...

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Veröffentlicht in:Chemistry : a European journal 2008-10, Vol.14 (30), p.9347-9356
Hauptverfasser: Xu, Bao-Hua, Peng, Xu-Qing, Li, Yi-Zhi, Yan, Hong
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Li, Yi-Zhi
Yan, Hong
description The reaction of the 16e half‐sandwich complex [CpCo(S2C2B10H10)] (1 S; Cp: cyclopentadienyl) with ethynylferrocene in CH2Cl2 at ambient temperature leads to [CpCo(S2C2B10H9)(CH2CFc)] (2 S; Fc: ferrocenyl) and 1,2,4‐triferrocenylbenzene. In 2 S, B substitution occurs at the carborane cage in the position B(3)/B(6) with the formation of a CB bond. In the presence of the protic solvent MeOH, 2 S loses a CpCo fragment to generate [(CH2CFc)(S2C2B10H9)] (3 S). On the other hand, 2 S can take a free CpCo fragment to form [(CpCo)2(S2C2B9H8)(CHCFc)] (4 S) containing a nido‐C2B9 unit. In sharp contrast, [CpCo(Se2C2B10H10)] (1 Se) does not react with the alkyne in CH2Cl2, but in MeOH [(CHCFc)(Se2C2B10H10)] (5 Se) is generated without the presence of a CpCo unit. The reaction of 1 with dimethyl acetylenedicarboxylate at ambient temperature leads to insertion compounds [CpCo(E2C2B10H10){(MeO2C)CC(CO2Me)}] (6 S, E=S; 6 Se, E=Se). Upon heating, 6 S rearranges to two geometrical isomers [CpCo(S2C2B10H9){(MeO2C)CCH(CO2Me)}] (7 S) and [CpCo(S2C2B10H9){(MeO2C)CHC(CO2Me)}] (8 S). In both, BH functionalization takes place at the carborane cage in the position B(3)/B(6), but 7 S is a 16e complex with an olefinic unit in a Z configuration, and 8 S is an 18e complex containing an alkyl BCH group. Further treatment of 7 S with dimethyl acetylenedicarboxylate at ambient temperature affords two B‐disubstituted complexes at the carborane cage in the positions of the B(3) and B(6) sites, that is, [CpCo(S2C2B10H8){(MeO2C)CCH(CO2Me)}2] (9 S) and [CpCo(S2C2B10H8){(MeO2C)CHC(CO2Me)}{(MeO2C)CCH(CO2Me)}] (10 S). Compound 9 S is a 16e complex with two olefinic units in E/E configurations, whereas 10 S is an 18e species containing both an olefinic substituent and an alkyl BCH unit. The reaction of 7 S with methyl acetylenemonocarboxylate at ambient temperature leads to the sole 16e compound [CpCo(S2C2B10H8){CHCH(CO2Me)}{(MeO2C)CCH(CO2Me)}] (11 S). In contrast, 6 Se does not rearrange. All new complexes 2 S–4 S, 5 Se, 6 Se, and 7 S–11 S were characterized by NMR spectroscopy (1H, 11B, 13C) and X‐ray structural analyses were performed for 2 S–4 S, 5 Se, 6 Se, and 7 S–9 S. Sandwich course: Reaction of 1 S with HCCFc (Fc: ferrocenyl) leads to 2 S, which converts to 3 S and 4 S in MeOH (see scheme). However, in the case of MeO2CCCCO2Me, the stepwise substitution of the o‐carborane cage at the B(3)/B(6)‐positions leads to 7 S and 9 S, respectively.
doi_str_mv 10.1002/chem.200801136
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In 2 S, B substitution occurs at the carborane cage in the position B(3)/B(6) with the formation of a CB bond. In the presence of the protic solvent MeOH, 2 S loses a CpCo fragment to generate [(CH2CFc)(S2C2B10H9)] (3 S). On the other hand, 2 S can take a free CpCo fragment to form [(CpCo)2(S2C2B9H8)(CHCFc)] (4 S) containing a nido‐C2B9 unit. In sharp contrast, [CpCo(Se2C2B10H10)] (1 Se) does not react with the alkyne in CH2Cl2, but in MeOH [(CHCFc)(Se2C2B10H10)] (5 Se) is generated without the presence of a CpCo unit. The reaction of 1 with dimethyl acetylenedicarboxylate at ambient temperature leads to insertion compounds [CpCo(E2C2B10H10){(MeO2C)CC(CO2Me)}] (6 S, E=S; 6 Se, E=Se). Upon heating, 6 S rearranges to two geometrical isomers [CpCo(S2C2B10H9){(MeO2C)CCH(CO2Me)}] (7 S) and [CpCo(S2C2B10H9){(MeO2C)CHC(CO2Me)}] (8 S). In both, BH functionalization takes place at the carborane cage in the position B(3)/B(6), but 7 S is a 16e complex with an olefinic unit in a Z configuration, and 8 S is an 18e complex containing an alkyl BCH group. Further treatment of 7 S with dimethyl acetylenedicarboxylate at ambient temperature affords two B‐disubstituted complexes at the carborane cage in the positions of the B(3) and B(6) sites, that is, [CpCo(S2C2B10H8){(MeO2C)CCH(CO2Me)}2] (9 S) and [CpCo(S2C2B10H8){(MeO2C)CHC(CO2Me)}{(MeO2C)CCH(CO2Me)}] (10 S). Compound 9 S is a 16e complex with two olefinic units in E/E configurations, whereas 10 S is an 18e species containing both an olefinic substituent and an alkyl BCH unit. The reaction of 7 S with methyl acetylenemonocarboxylate at ambient temperature leads to the sole 16e compound [CpCo(S2C2B10H8){CHCH(CO2Me)}{(MeO2C)CCH(CO2Me)}] (11 S). In contrast, 6 Se does not rearrange. All new complexes 2 S–4 S, 5 Se, 6 Se, and 7 S–11 S were characterized by NMR spectroscopy (1H, 11B, 13C) and X‐ray structural analyses were performed for 2 S–4 S, 5 Se, 6 Se, and 7 S–9 S. Sandwich course: Reaction of 1 S with HCCFc (Fc: ferrocenyl) leads to 2 S, which converts to 3 S and 4 S in MeOH (see scheme). However, in the case of MeO2CCCCO2Me, the stepwise substitution of the o‐carborane cage at the B(3)/B(6)‐positions leads to 7 S and 9 S, respectively.</description><identifier>ISSN: 0947-6539</identifier><identifier>EISSN: 1521-3765</identifier><identifier>DOI: 10.1002/chem.200801136</identifier><identifier>PMID: 18767076</identifier><language>eng</language><publisher>Weinheim: WILEY-VCH Verlag</publisher><subject>carboranes ; chalcogens ; cobalt ; cyclotrimerization ; sandwich complexes</subject><ispartof>Chemistry : a European journal, 2008-10, Vol.14 (30), p.9347-9356</ispartof><rights>Copyright © 2008 WILEY‐VCH Verlag GmbH &amp; Co. KGaA, Weinheim</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c3816-af7ceec8099939791a82299e59ef40e7053eb60eab63cbbc5984d3972b91ea043</citedby><cites>FETCH-LOGICAL-c3816-af7ceec8099939791a82299e59ef40e7053eb60eab63cbbc5984d3972b91ea043</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktopdf>$$Uhttps://onlinelibrary.wiley.com/doi/pdf/10.1002%2Fchem.200801136$$EPDF$$P50$$Gwiley$$H</linktopdf><linktohtml>$$Uhttps://onlinelibrary.wiley.com/doi/full/10.1002%2Fchem.200801136$$EHTML$$P50$$Gwiley$$H</linktohtml><link.rule.ids>314,776,780,1411,27901,27902,45550,45551</link.rule.ids><backlink>$$Uhttps://www.ncbi.nlm.nih.gov/pubmed/18767076$$D View this record in MEDLINE/PubMed$$Hfree_for_read</backlink></links><search><creatorcontrib>Xu, Bao-Hua</creatorcontrib><creatorcontrib>Peng, Xu-Qing</creatorcontrib><creatorcontrib>Li, Yi-Zhi</creatorcontrib><creatorcontrib>Yan, Hong</creatorcontrib><title>Reactions of 16e CpCo Half-Sandwich Complexes Containing a Chelating 1,2-Dicarba-closo-dodecaborane-1,2-dichalcogenolate Ligand with Ethynylferrocene and Dimethyl Acetylenedicarboxylate</title><title>Chemistry : a European journal</title><addtitle>Chemistry - A European Journal</addtitle><description>The reaction of the 16e half‐sandwich complex [CpCo(S2C2B10H10)] (1 S; Cp: cyclopentadienyl) with ethynylferrocene in CH2Cl2 at ambient temperature leads to [CpCo(S2C2B10H9)(CH2CFc)] (2 S; Fc: ferrocenyl) and 1,2,4‐triferrocenylbenzene. In 2 S, B substitution occurs at the carborane cage in the position B(3)/B(6) with the formation of a CB bond. In the presence of the protic solvent MeOH, 2 S loses a CpCo fragment to generate [(CH2CFc)(S2C2B10H9)] (3 S). On the other hand, 2 S can take a free CpCo fragment to form [(CpCo)2(S2C2B9H8)(CHCFc)] (4 S) containing a nido‐C2B9 unit. In sharp contrast, [CpCo(Se2C2B10H10)] (1 Se) does not react with the alkyne in CH2Cl2, but in MeOH [(CHCFc)(Se2C2B10H10)] (5 Se) is generated without the presence of a CpCo unit. The reaction of 1 with dimethyl acetylenedicarboxylate at ambient temperature leads to insertion compounds [CpCo(E2C2B10H10){(MeO2C)CC(CO2Me)}] (6 S, E=S; 6 Se, E=Se). Upon heating, 6 S rearranges to two geometrical isomers [CpCo(S2C2B10H9){(MeO2C)CCH(CO2Me)}] (7 S) and [CpCo(S2C2B10H9){(MeO2C)CHC(CO2Me)}] (8 S). In both, BH functionalization takes place at the carborane cage in the position B(3)/B(6), but 7 S is a 16e complex with an olefinic unit in a Z configuration, and 8 S is an 18e complex containing an alkyl BCH group. Further treatment of 7 S with dimethyl acetylenedicarboxylate at ambient temperature affords two B‐disubstituted complexes at the carborane cage in the positions of the B(3) and B(6) sites, that is, [CpCo(S2C2B10H8){(MeO2C)CCH(CO2Me)}2] (9 S) and [CpCo(S2C2B10H8){(MeO2C)CHC(CO2Me)}{(MeO2C)CCH(CO2Me)}] (10 S). Compound 9 S is a 16e complex with two olefinic units in E/E configurations, whereas 10 S is an 18e species containing both an olefinic substituent and an alkyl BCH unit. The reaction of 7 S with methyl acetylenemonocarboxylate at ambient temperature leads to the sole 16e compound [CpCo(S2C2B10H8){CHCH(CO2Me)}{(MeO2C)CCH(CO2Me)}] (11 S). In contrast, 6 Se does not rearrange. All new complexes 2 S–4 S, 5 Se, 6 Se, and 7 S–11 S were characterized by NMR spectroscopy (1H, 11B, 13C) and X‐ray structural analyses were performed for 2 S–4 S, 5 Se, 6 Se, and 7 S–9 S. Sandwich course: Reaction of 1 S with HCCFc (Fc: ferrocenyl) leads to 2 S, which converts to 3 S and 4 S in MeOH (see scheme). However, in the case of MeO2CCCCO2Me, the stepwise substitution of the o‐carborane cage at the B(3)/B(6)‐positions leads to 7 S and 9 S, respectively.</description><subject>carboranes</subject><subject>chalcogens</subject><subject>cobalt</subject><subject>cyclotrimerization</subject><subject>sandwich complexes</subject><issn>0947-6539</issn><issn>1521-3765</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2008</creationdate><recordtype>article</recordtype><recordid>eNqFkc2O0zAURiMEYsrAliXyihUudtzY8XKUlimjdpD4EUvLcW4agxN34lRtHo23w6HVwI6Vr3zPdyzrS5LXlMwpIel700A7TwnJCaWMP0lmNEspZoJnT5MZkQuBecbkVfIihB-EEMkZe55c0VxwQQSfJb8-gzaD9V1AvkaUAyr2hUdr7Wr8RXfV0ZoGFb7dOzhBiFM3aNvZboc0Khpwephm-i7FS2t0X2psnA8eV74Co0vf6w7wtK6iSDvjd9D5mAK0sbvoR0c7NGg1NGM3uhr63hvoAE2bpW0h3jt0Y2AYXbyu_jzhT-MkeJk8q7UL8OpyXiffPqy-Fmu8-XT7sbjZYMNyyrGuhQEwOZFSMikk1XmaSgmZhHpBQJCMQckJ6JIzU5Ymk_miimBaSgqaLNh18vbs3ff-4QBhUK0NBpyLP_OHoLjkXFCeR3B-Bk3vQ-ihVvvetrofFSVqKktNZanHsmLgzcV8KFuo_uKXdiIgz8DROhj_o1PFerX9V47PWRsGOD1mdf9TccFEpr7f3yp6R-_T7d1WLdlvblKy8w</recordid><startdate>20081020</startdate><enddate>20081020</enddate><creator>Xu, Bao-Hua</creator><creator>Peng, Xu-Qing</creator><creator>Li, Yi-Zhi</creator><creator>Yan, Hong</creator><general>WILEY-VCH Verlag</general><general>WILEY‐VCH Verlag</general><scope>BSCLL</scope><scope>NPM</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>7X8</scope></search><sort><creationdate>20081020</creationdate><title>Reactions of 16e CpCo Half-Sandwich Complexes Containing a Chelating 1,2-Dicarba-closo-dodecaborane-1,2-dichalcogenolate Ligand with Ethynylferrocene and Dimethyl Acetylenedicarboxylate</title><author>Xu, Bao-Hua ; Peng, Xu-Qing ; Li, Yi-Zhi ; Yan, Hong</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c3816-af7ceec8099939791a82299e59ef40e7053eb60eab63cbbc5984d3972b91ea043</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2008</creationdate><topic>carboranes</topic><topic>chalcogens</topic><topic>cobalt</topic><topic>cyclotrimerization</topic><topic>sandwich complexes</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Xu, Bao-Hua</creatorcontrib><creatorcontrib>Peng, Xu-Qing</creatorcontrib><creatorcontrib>Li, Yi-Zhi</creatorcontrib><creatorcontrib>Yan, Hong</creatorcontrib><collection>Istex</collection><collection>PubMed</collection><collection>CrossRef</collection><collection>MEDLINE - Academic</collection><jtitle>Chemistry : a European journal</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Xu, Bao-Hua</au><au>Peng, Xu-Qing</au><au>Li, Yi-Zhi</au><au>Yan, Hong</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Reactions of 16e CpCo Half-Sandwich Complexes Containing a Chelating 1,2-Dicarba-closo-dodecaborane-1,2-dichalcogenolate Ligand with Ethynylferrocene and Dimethyl Acetylenedicarboxylate</atitle><jtitle>Chemistry : a European journal</jtitle><addtitle>Chemistry - A European Journal</addtitle><date>2008-10-20</date><risdate>2008</risdate><volume>14</volume><issue>30</issue><spage>9347</spage><epage>9356</epage><pages>9347-9356</pages><issn>0947-6539</issn><eissn>1521-3765</eissn><abstract>The reaction of the 16e half‐sandwich complex [CpCo(S2C2B10H10)] (1 S; Cp: cyclopentadienyl) with ethynylferrocene in CH2Cl2 at ambient temperature leads to [CpCo(S2C2B10H9)(CH2CFc)] (2 S; Fc: ferrocenyl) and 1,2,4‐triferrocenylbenzene. In 2 S, B substitution occurs at the carborane cage in the position B(3)/B(6) with the formation of a CB bond. In the presence of the protic solvent MeOH, 2 S loses a CpCo fragment to generate [(CH2CFc)(S2C2B10H9)] (3 S). On the other hand, 2 S can take a free CpCo fragment to form [(CpCo)2(S2C2B9H8)(CHCFc)] (4 S) containing a nido‐C2B9 unit. In sharp contrast, [CpCo(Se2C2B10H10)] (1 Se) does not react with the alkyne in CH2Cl2, but in MeOH [(CHCFc)(Se2C2B10H10)] (5 Se) is generated without the presence of a CpCo unit. The reaction of 1 with dimethyl acetylenedicarboxylate at ambient temperature leads to insertion compounds [CpCo(E2C2B10H10){(MeO2C)CC(CO2Me)}] (6 S, E=S; 6 Se, E=Se). Upon heating, 6 S rearranges to two geometrical isomers [CpCo(S2C2B10H9){(MeO2C)CCH(CO2Me)}] (7 S) and [CpCo(S2C2B10H9){(MeO2C)CHC(CO2Me)}] (8 S). In both, BH functionalization takes place at the carborane cage in the position B(3)/B(6), but 7 S is a 16e complex with an olefinic unit in a Z configuration, and 8 S is an 18e complex containing an alkyl BCH group. Further treatment of 7 S with dimethyl acetylenedicarboxylate at ambient temperature affords two B‐disubstituted complexes at the carborane cage in the positions of the B(3) and B(6) sites, that is, [CpCo(S2C2B10H8){(MeO2C)CCH(CO2Me)}2] (9 S) and [CpCo(S2C2B10H8){(MeO2C)CHC(CO2Me)}{(MeO2C)CCH(CO2Me)}] (10 S). Compound 9 S is a 16e complex with two olefinic units in E/E configurations, whereas 10 S is an 18e species containing both an olefinic substituent and an alkyl BCH unit. The reaction of 7 S with methyl acetylenemonocarboxylate at ambient temperature leads to the sole 16e compound [CpCo(S2C2B10H8){CHCH(CO2Me)}{(MeO2C)CCH(CO2Me)}] (11 S). In contrast, 6 Se does not rearrange. All new complexes 2 S–4 S, 5 Se, 6 Se, and 7 S–11 S were characterized by NMR spectroscopy (1H, 11B, 13C) and X‐ray structural analyses were performed for 2 S–4 S, 5 Se, 6 Se, and 7 S–9 S. Sandwich course: Reaction of 1 S with HCCFc (Fc: ferrocenyl) leads to 2 S, which converts to 3 S and 4 S in MeOH (see scheme). However, in the case of MeO2CCCCO2Me, the stepwise substitution of the o‐carborane cage at the B(3)/B(6)‐positions leads to 7 S and 9 S, respectively.</abstract><cop>Weinheim</cop><pub>WILEY-VCH Verlag</pub><pmid>18767076</pmid><doi>10.1002/chem.200801136</doi><tpages>10</tpages></addata></record>
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chalcogens
cobalt
cyclotrimerization
sandwich complexes
title Reactions of 16e CpCo Half-Sandwich Complexes Containing a Chelating 1,2-Dicarba-closo-dodecaborane-1,2-dichalcogenolate Ligand with Ethynylferrocene and Dimethyl Acetylenedicarboxylate
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