Yin Baipeng, Wang Can, Xie Shijie, Gu Jianmin, Sheng Hua, Wang De-Xian, Yao Jiannian, Zhang Chuang
Beijing National Laboratory for Molecular Sciences Institute of Chemistry, Chinese Academy of Sciences, Beijing, 100190, China.
State Key Laboratory of Metastable Materials Science and Technology (MMST) Hebei Key Laboratory of Applied Chemistry, Yanshan University, Qinhuangdao, 066004, China.
Angew Chem Int Ed Engl. 2024 Jul 15;63(29):e202405873. doi: 10.1002/anie.202405873. Epub 2024 Jun 14.
The selectivity of multicarbon products in the CO reduction reaction (CORR) depends on the spin alignment of neighboring active sites, which requires a spin catalyst that facilitates electron transfer with antiparallel spins for enhanced C-C coupling. Here, we design a radical-contained spin catalyst (TEMPOL@HKUST-1) to enhance CO-to-ethylene conversion, in which spin-disordered (SDO) and spin-ordered (SO) phases co-exist to construct an asymmetric spin configuration of neighboring active sites. The replacement of axially coordinated HO molecules with TEMPOL radicals introduces spin-spin interactions among the Cu(II) centers to form localized SO phases within the original HO-mediated SDO phases. Therefore, TEMPOL@HKUST-1 derived catalyst exhibited an approximately two-fold enhancement in ethylene selectivity during the CORR at -1.8 V versus Ag/AgCl compared to pristine HKUST-1. In situ ATR-SEIRAS spectra indicate that the spin configuration at asymmetric SO/SDO sites significantly reduces the kinetic barrier for *CO intermediate dimerization toward the ethylene product. The performance of the spin catalyst is further improved by spin alignment under a magnetic field, resulting in a maximum ethylene selectivity of more than 50 %. The exploration of the spin-polarized kinetics of the CORR provides a promising path for the development of novel spin electrocatalysts with superior performance.
在CO还原反应(CORR)中,多碳产物的选择性取决于相邻活性位点的自旋排列,这需要一种自旋催化剂来促进具有反平行自旋的电子转移,以增强C-C耦合。在此,我们设计了一种含自由基的自旋催化剂(TEMPOL@HKUST-1)来提高CO到乙烯的转化率,其中自旋无序(SDO)相和自旋有序(SO)相共存,以构建相邻活性位点的不对称自旋构型。用TEMPOL自由基取代轴向配位的HO分子会在Cu(II)中心之间引入自旋-自旋相互作用,从而在原始HO介导的SDO相中形成局部SO相。因此与原始的HKUST-1相比,TEMPOL@HKUST-1衍生的催化剂在相对于Ag/AgCl为-1.8 V的CORR过程中,乙烯选择性提高了约两倍。原位ATR-SEIRAS光谱表明,不对称SO/SDO位点的自旋构型显著降低了*CO中间体二聚生成乙烯产物的动力学势垒。通过在磁场下进行自旋排列,自旋催化剂的性能进一步提高,乙烯选择性最高可达50%以上。对CORR自旋极化动力学的探索为开发具有优异性能的新型自旋电催化剂提供了一条有前景的途径。