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Vanadium Alkylidyne Initiated Cyclic Polymer Synthesis: The Importance of a Deprotiovanadacyclobutadiene Moiety

苯乙炔 化学 聚合 配体(生物化学) 脱质子化 金属环 立体化学 二聚体 药物化学 催化作用 聚合物 有机化学 离子 生物化学 X射线晶体学 受体 物理 衍射 光学
作者
Mehrafshan G. Jafari,John G. Russell,Hanna Lee,Bimal Pudasaini,Digvijayee Pal,Zhihui Miao,Michael R. Gau,Patrick J. Carroll,Brent S. Sumerlin,Adam S. Veige,Mu‐Hyun Baik,Daniel J. Mindiola
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:146 (5): 2997-3009 被引量:2
标识
DOI:10.1021/jacs.3c08149
摘要

Reported is the catalytic cyclic polymer synthesis by a 3d transition metal complex: a V(V) alkylidyne, [(dBDI)V≡CtBu(OEt2)] (1–OEt2), supported by the deprotonated β-diketiminate dBDI2– (dBDI2– = ArNC(CH3)CHC(CH2)NAr, Ar = 2,6-iPr2C6H3). Complex 1–OEt2 is a precatalyst for the polymerization of phenylacetylene (PhCCH) to give cyclic poly(phenylacetylene) (c-PPA), whereas its precursor, complex [(BDI)V≡CtBu(OTf)] (2–OTf; BDI– = [ArNC(CH3)]2CH, Ar = 2,6-iPr2C6H3, OTf = OSO2CF3), and the zwitterion [((C6F5)3B–dBDI)V≡CtBu(OEt2)] (3–OEt2) exhibit low catalytic activity despite having a neopentylidyne ligand. Cyclic polymer topologies were verified by size-exclusion chromatography (SEC) and intrinsic viscosity studies. A component of the mechanism of the cyclic polymerization reaction was probed by isolation and full characterization of 4- and 6-membered metallacycles as model intermediates. Metallacyclobutadiene (MCBD) and deprotiometallacyclobutadiene (dMCBD) complexes (dBDI)V[C(tBu)C(H)C(tBu)] (4–tBu) and (BDI)V[C(tBu)CC(Mes)] (5–Mes), respectively, were synthesized upon reaction with bulkier alkynes, tBu– (tBuCCH) and Mes–acetylene (MesCCH), with 1–OEt2. Furthermore, the reaction of the conjugate acid of 1–OEt2, [(BDI)V≡CtBu(OTf)] (2–OTf), with the conjugated base of phenylacetylene, lithium phenylacetylide (LiCCPh), yields the doubly deprotio-metallacycle complex, [Li(THF)4]{(BDI)V[C(Ph)CC(tBu)CC(Ph)]} (6). Protonation of the doubly deprotio-metallacycle complex 6 yields 6–H+, a catalytically active species toward the polymerization of PhCCH, for which the polymers were also confirmed to be cyclic by SEC studies. Computational mechanistic studies complement the experimental observations and provide insight into the mechanism of cyclic polymer growth. The noninnocence of the supporting dBDI2– ligand and its role in proton shuttling to generate deprotiometallacyclobutadiene (dMCBD) complexes that proposedly culminate in the formation of catalytically active V(III) species are also discussed. This work demonstrates how a dMCBD moiety can react with terminal alkynes to form cyclic polyalkynes.
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