催化作用                        
                
                                
                        
                            选择性                        
                
                                
                        
                            半导体                        
                
                                
                        
                            材料科学                        
                
                                
                        
                            纳米技术                        
                
                                
                        
                            分解                        
                
                                
                        
                            化学                        
                
                                
                        
                            光催化                        
                
                                
                        
                            光化学                        
                
                                
                        
                            光电子学                        
                
                                
                        
                            有机化学                        
                
                        
                    
            作者
            
                Ming‐Yu Qi,Wei-Yun Xiao,Marco Conte,Zi‐Rong Tang,Yi‐Jun Xu            
         
                    
            出处
            
                                    期刊:ACS Catalysis
                                                         [American Chemical Society]
                                                        日期:2024-12-16
                                                        卷期号:15 (1): 129-138
                                                        被引量:68
                                 
         
        
    
            
            标识
            
                                    DOI:10.1021/acscatal.4c05842
                                    
                                
                                 
         
        
                
            摘要
            
            Semiconductor-based photocatalysis has evolved over the past decade into a prevalent approach for alcohol oxidation to afford the corresponding carbonyl compounds or C–C/C–O coupled products. Nonetheless, photocatalytic oxidative lactonization of diols to lactones still significantly lags behind, even though lactones represent a class of ring moieties with excellent biological activities. In this work, we present the high-performance visible-light-mediated lactonization of diols to lactones and H2 over the Ti3C2Tx MXene-supported CdS quantum dots (QDs) with Ni decoration (Ni/CdS/Ti3C2Tx). Ti3C2Tx acts as a two-dimensional platform for immobilizing CdS to promote the separation and migration of charge carriers, while concomitantly the Cd2+ confinement effect of Ti3C2Tx significantly retards the hole-induced photocorrosion of CdS. The unique modifications of atomically dispersed Ni species are either incorporated as Ni clusters in CdS to accelerate H2 evolution, or anchored as a Ni single atom on Ti3C2Tx for the efficient adsorption and cyclization of diols. The optimized Ni/CdS/Ti3C2Tx exhibits remarkably enhanced activity for lactone synthesis, which is 80.4 times higher than that of blank CdS, along with excellent selectivity and high durability. This work brings a conceptual idea to overcome the well-known intrinsic drawback of photoinduced decomposition in semiconductor-based photocatalysts and offers a generic and robust strategy of utilizing atomically dispersed cocatalyst as active sites for efficient and robust photoredox lactones synthesis and H2 evolution.
         
            
 
                 
                
                    
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