Yin Jinlin, Li Dongyang, Sun Chen, Jiang Yilin, Li Yukong, Fei Honghan
Shanghai Key Laboratory of Chemical Assessment and Sustain ability, School of Chemical Science and Engineering, Tongji University, 1239 Siping Rd., Shanghai, 200092, China.
Adv Mater. 2024 Jul;36(30):e2403651. doi: 10.1002/adma.202403651. Epub 2024 May 9.
Photocatalytic CO reduction to high-value-added C products presents significant challenges, which is attributed to the slow kinetics of multi-e CO photoreduction and the high thermodynamic barrier for C-C coupling. Incorporating redox-active Co/Ni cations into lead halide photocatalysts has high potentials to improve carrier transport and introduce charge polarized bimetallic sites, addressing the kinetic and thermodynamic issues, respectively. In this study, a coordination-driven synthetic strategy is developed to introduce 3d transition metals into the interlamellar region of layered organolead iodides with atomic precision. The resultant bimetallic halide hybrids exhibit selective photoreduction of CO to CHOH using HO vapor at the evolution rates of 24.9-31.4 µmol g h and high selectivity of 89.5-93.6%, while pristine layered lead iodide yields only C products. Band structure calculations and photoluminescence studies indicate that the interlayer Co/Ni species greatly contribute to the frontier orbitals and enhance exciton dissociation into free carriers, facilitating carrier transport between adjacent lead iodide layers. In addition, Bader charge distribution calculations and in situ experimental spectroscopic studies reveal that the asymmetric Ni-O-Pb bimetallic catalytic sites exhibit intrinsic charge polarization, promoting C-C coupling and leading to the formation of the key *OC-CHO intermediate.
光催化将CO还原为高附加值C产物面临重大挑战,这归因于多电子CO光还原的缓慢动力学以及C-C偶联的高热力学势垒。将具有氧化还原活性的Co/Ni阳离子引入卤化铅光催化剂中,分别解决动力学和热力学问题,在改善载流子传输和引入电荷极化双金属位点方面具有很大潜力。在本研究中,开发了一种配位驱动的合成策略,以原子精度将3d过渡金属引入层状有机碘化铅的层间区域。所得的双金属卤化物杂化物在24.9-31.4 µmol g⁻¹ h⁻¹的析出速率下,利用H₂O蒸汽将CO选择性光还原为CH₃OH,选择性高达89.5-93.6%,而原始的层状碘化铅仅生成C产物。能带结构计算和光致发光研究表明,层间Co/Ni物种对前沿轨道有很大贡献,并增强激子解离为自由载流子,促进相邻碘化铅层之间的载流子传输。此外,巴德电荷分布计算和原位实验光谱研究表明,不对称的Ni-O-Pb双金属催化位点表现出固有的电荷极化,促进C-C偶联并导致关键的*OC-CHO中间体的形成。