材料科学                        
                
                                
                        
                            催化作用                        
                
                                
                        
                            氢溢流                        
                
                                
                        
                            合金                        
                
                                
                        
                            纳米颗粒                        
                
                                
                        
                            氢                        
                
                                
                        
                            高熵合金                        
                
                                
                        
                            制作                        
                
                                
                        
                            纳米技术                        
                
                                
                        
                            化学工程                        
                
                                
                        
                            化学                        
                
                                
                        
                            冶金                        
                
                                
                        
                            有机化学                        
                
                                
                        
                            替代医学                        
                
                                
                        
                            病理                        
                
                                
                        
                            工程类                        
                
                                
                        
                            医学                        
                
                        
                    
            作者
            
                Kohsuke Mori,Naoki Hashimoto,Naoto Kamiuchi,Hideto Yoshida,Hisayoshi Kobayashi,Hiromi Yamashita            
         
                    
        
    
            
            标识
            
                                    DOI:10.1038/s41467-021-24228-z
                                    
                                
                                 
         
        
                
            摘要
            
            Abstract High-entropy alloys (HEAs) have been intensively pursued as potentially advanced materials because of their exceptional properties. However, the facile fabrication of nanometer-sized HEAs over conventional catalyst supports remains challenging, and the design of rational synthetic protocols would permit the development of innovative catalysts with a wide range of potential compositions. Herein, we demonstrate that titanium dioxide (TiO 2 ) is a promising platform for the low-temperature synthesis of supported CoNiCuRuPd HEA nanoparticles (NPs) at 400 °C. This process is driven by the pronounced hydrogen spillover effect on TiO 2 in conjunction with coupled proton/electron transfer. The CoNiCuRuPd HEA NPs on TiO 2 produced in this work were found to be both active and extremely durable during the CO 2 hydrogenation reaction. Characterization by means of various in situ techniques and theoretical calculations elucidated that cocktail effect and sluggish diffusion originating from the synergistic effect obtained by this combination of elements.
         
            
 
                 
                
                    
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