Zhang Mengling, Zhang Yan, Du Xin, Ma Yurong, Huang Hui, Liao Fan, Fan Xing, Wang Jianhua, Lin Haiping, Shao Mingwang, Liu Yang, Li Youyong, Kang Zhenhui
Macao Institute of Materials Science and Engineering (MIMSE), MUST-SUDA Joint Research Center for Advanced Functional Materials, Macau University of Science and Technology, Taipa, Macao 999078, China.
Institute of Functional Nano and Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices, Soochow University, Suzhou 215123, China.
ACS Appl Mater Interfaces. 2024 Apr 17;16(15):19379-19390. doi: 10.1021/acsami.4c02003. Epub 2024 Apr 3.
Photodriven chiral catalysis is the combination of photocatalysis and chiral catalysis and is considered one of the cleanest and most efficient methods for the synthesis of chiral compounds or drugs. Furthermore, due to the potential metal contamination associated with most metal-based catalysts, metal-free chiral photocatalysts are ideal candidates. In this work, we demonstrate that metal-free chiral carbon dots (CDs) exhibit size-dependent enantioselective photocatalytic activity. Using serine as the raw material, chiral CDs with well-defined structures and average sizes of 2.22, 3.01, 3.70, 4.77, and 7.21 nm were synthesized using the electrochemical method. These chiral CDs possess size-dependent band gaps and exhibit photoresponsive enantioselective catalytic activity toward the oxidation of dihydroxyphenylalanine (DOPA). Under light-assisted conditions, chiral CDs (L72, 500 μg/mL) exhibit high selectivity (selectivity factor: 2.07) and maintain a certain level of catalytic activity (1.34 μM/min) even at a low temperature of 5 °C. The high catalytic activity of the chiral CDs arises from their photoelectrons reducing O to generate O, as the active oxygen species for DOPA oxidation. The high enantioselectivity of the chiral CDs is attributed to their differential adsorption capabilities toward DOPA enantiomers. This study provides a new approach for designing metal-free chiral photocatalysts with high enantioselectivity.
光驱动手性催化是光催化和手性催化的结合,被认为是合成手性化合物或药物最清洁、最高效的方法之一。此外,由于大多数金属基催化剂存在潜在的金属污染问题,无金属手性光催化剂是理想的选择。在这项工作中,我们证明了无金属手性碳点(CDs)表现出尺寸依赖性的对映选择性光催化活性。以丝氨酸为原料,采用电化学方法合成了结构明确、平均尺寸分别为2.22、3.01、3.70、4.77和7.21 nm的手性CDs。这些手性CDs具有尺寸依赖性的带隙,并对二羟基苯丙氨酸(DOPA)的氧化表现出光响应性对映选择性催化活性。在光辅助条件下,手性CDs(L72,500 μg/mL)表现出高选择性(选择性因子:2.07),即使在5℃的低温下也能保持一定水平的催化活性(1.34 μM/min)。手性CDs的高催化活性源于其光电子将O还原生成O,作为DOPA氧化的活性氧物种。手性CDs的高对映选择性归因于它们对DOPA对映体的差异吸附能力。本研究为设计具有高对映选择性的无金属手性光催化剂提供了一种新方法。