Department of Chemistry and Chemical Biology, Harvard University, Cambridge, MA 02138.
Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139.
Proc Natl Acad Sci U S A. 2018 Jun 5;115(23):E5261-E5268. doi: 10.1073/pnas.1722235115. Epub 2018 May 21.
Electrodeposited manganese oxide films are promising catalysts for promoting the oxygen evolution reaction (OER), especially in acidic solutions. The activity of these catalysts is known to be enhanced by the introduction of Mn We present in situ electrochemical and X-ray absorption spectroscopic studies, which reveal that Mn may be introduced into MnO by an electrochemically induced comproportionation reaction with Mn and that Mn persists in OER active films. Extended X-ray absorption fine structure (EXAFS) spectra of the Mn-activated films indicate a decrease in the Mn-O coordination number, and Raman microspectroscopy reveals the presence of distorted Mn-O environments. Computational studies show that Mn is kinetically trapped in tetrahedral sites and in a fully oxidized structure, consistent with the reduction of coordination number observed in EXAFS. Although in a reduced state, computation shows that Mn states are stabilized relative to those of oxygen and that the highest occupied molecular orbital (HOMO) is thus dominated by oxygen states. Furthermore, the Mn(T) induces local strain on the oxide sublattice as observed in Raman spectra and results in a reduced gap between the HOMO and the lowest unoccupied molecular orbital (LUMO). The confluence of a reduced HOMO-LUMO gap and oxygen-based HOMO results in the facilitation of OER on the application of anodic potentials to the δ-MnO polymorph incorporating Mn ions.
电沉积氧化锰薄膜是一种很有前途的析氧反应 (OER) 催化剂,特别是在酸性溶液中。已知这些催化剂的活性可以通过与 Mn 的电化学诱导歧化反应将 Mn 引入 MnO 中得到增强,并且 Mn 存在于 OER 活性薄膜中。原位电化学和 X 射线吸收光谱研究表明,Mn 可能通过与 Mn 的电化学诱导歧化反应引入 MnO 中,并且 Mn 在 OER 活性薄膜中稳定存在。Mn 激活薄膜的扩展 X 射线吸收精细结构 (EXAFS) 光谱表明 Mn-O 配位数减少,拉曼微光谱表明存在扭曲的 Mn-O 环境。计算研究表明,Mn 在动力学上被捕获在四面体位置和完全氧化的结构中,与 EXAFS 中观察到的配位数减少一致。尽管处于还原状态,但计算表明 Mn 态相对于氧态稳定,占据轨道(HOMO)主要由氧态占据。此外,Mn(T) 如拉曼光谱中观察到的那样,在氧化物亚晶格上引起局部应变,导致 HOMO 和最低未占据分子轨道 (LUMO) 之间的间隙减小。还原的 HOMO-LUMO 间隙和基于氧的 HOMO 的融合导致在施加阳极电势时,δ-MnO 多晶型物中含有 Mn 离子,有利于 OER。