Wonjung Lee, Daeyong Um, Yujin Baek, Sugyeong Hong, Youngseob Lee, Jaeheon Lee, Jin Kim, Sun Hee Kim, Kyung-Bin Cho, Junhyeok Seo
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引用次数: 0
摘要
二硫代烯配体的氧化还原非无辜性质是众所周知的稳定高价金属离子和促进质子耦合电子转移(PCET)过程。到目前为止,质子在二硫烯位点的反应性主要与低价金属中心有关,因为高价金属-二硫烯配合物不被认为具有这种反应性。本研究引入了具有氢键相互作用的高价双(二硫烯)钨(W)-氧配合物,揭示了一种由二硫烯部分介导的新型质子还原机制。这个过程开始于一个亲核的w -氧形成一个氢键,随后在二硫代烯-硫(S)位点形成第二个氢键。这些氢键相互作用显著地调节了分子轨道能级,使WIV→III还原在-1.75 V (exp),并首次获得了III- oh中间物质的EPR谱。相反,直接电子转移到WIV=O态会填充二硫烯π*轨道,需要更大的能量(Ecal = -3.45 V)。对于催化质子还原,通过二噻吩- s位点的质子转移被认为是产生WV-H催化物质的能量最有利的途径。
Hydrogen Bond Assisted PCET and Formation of WIII-OH in Bis-dithiolene Complex.
The redox non-innocent nature of dithiolene ligands is well known for stabilizing high-valent metal ions and facilitating proton-coupled electron transfer (PCET) processes. Until now, proton reactivity at the dithiolene site has been primarily associated with low-valent metal centers, as high-valent metal-dithiolene complexes were not considered viable for such reactivity. This study introduces high-valent bis(dithiolene) tungsten (W)-oxo complexes featuring hydrogen-bonding interactions, unveiling a novel proton reduction mechanism mediated by the dithiolene moiety. The process begins with a nucleophilic W-oxo forming a hydrogen bond, followed by a second hydrogen bond at the dithiolene-sulfur (S) site. These hydrogen-bonding interactions significantly modulate the molecular orbital energy levels, enabling the WIV→III reduction at -1.75 V (Eexp) and allowing, for the first time, the acquisition of an EPR spectrum of a WIII-OH intermediate species. In contrast, direct electron transfer into the WIV=O state would populate the dithiolene π* orbital, demanding substantially larger energy (Ecal = -3.45 V). For catalytic proton reduction, the proton transfer through the dithiolene-S site was identified as the energetically most favorable pathway for generating the WV-H catalytic species.