Ji Yongjun, Liu Shaomian, Song Shaojia, Xing Liwen, Kang Ting, Zhang Bin, Li Huifang, Chen Wenxing, Li Zhenxing, Zhong Ziyi, Xu Guangwen, Su Fabing
School of Light Industry, Beijing Technology and Business University, Beijing, 100048, China.
School of Chemistry and Chemical Engineering, Hebei Normal University for Nationalities, Chengde, 067000, China.
Small. 2024 Feb;20(6):e2305715. doi: 10.1002/smll.202305715. Epub 2023 Oct 3.
Mesocrystals (MCs) with high-index facets may have superior catalytic properties to those with low-index facets and their nanocrystal counterparts. However, synthesizing such mesocrystal materials is still very challenging because of the metastability of MCs and energetic high-index crystal facets. This work reports a successful solvothermal method followed by calcination for synthesizing copper oxide-based MCs possessing a core-shell structure (denoted as Cu O@CuO HIMCs). Furthermore, these MCs are predominantly bounded by the high-index facets such as {311} or {312} with a high-density of stepped atoms. When used as catalysts in Si hydrochlorination to produce trichlorosilane (TCS, the primary feedstock of high-purity crystalline Si), Cu O@CuO HIMCs exhibit significantly enhanced Si conversion and TCS selectivity compared to those with flat surfaces and their nanostructured counterparts. Theoretical calculations reveal that both the core-shell structure and the high-index surface contribute to the increased electron density of Cu sites in Cu O@CuO HIMCs, promoting the adsorption and dissociation of HCl and stabilizing the dissociated Cl* intermediate. This work provides a simple method for synthesizing high-index faceted MCs and offers a feasible strategy to enhance the catalytic performance of MCs.
具有高指数晶面的介晶(MCs)可能比具有低指数晶面的介晶及其纳米晶对应物具有更优异的催化性能。然而,由于介晶的亚稳定性和高能高指数晶面,合成此类介晶材料仍然极具挑战性。这项工作报道了一种成功的溶剂热法,随后进行煅烧,以合成具有核壳结构的氧化铜基介晶(记为CuO@CuO HIMCs)。此外,这些介晶主要由具有高密度阶梯原子的高指数晶面(如{311}或{312})界定。当用作硅氢氯化反应中生产三氯硅烷(TCS,高纯度晶体硅的主要原料)的催化剂时,与具有平面表面的介晶及其纳米结构对应物相比,CuO@CuO HIMCs表现出显著提高的硅转化率和TCS选择性。理论计算表明,核壳结构和高指数表面都有助于提高CuO@CuO HIMCs中铜位点的电子密度,促进HCl的吸附和解离,并稳定解离的Cl*中间体。这项工作提供了一种合成高指数晶面介晶的简单方法,并为提高介晶的催化性能提供了一种可行的策略。