热塑性聚氨酯                        
                
                                
                        
                            材料科学                        
                
                                
                        
                            电极                        
                
                                
                        
                            锂(药物)                        
                
                                
                        
                            熔融沉积模型                        
                
                                
                        
                            缓冲                        
                
                                
                        
                            集电器                        
                
                                
                        
                            3D打印                        
                
                                
                        
                            聚氨酯                        
                
                                
                        
                            3d打印                        
                
                                
                        
                            复合材料                        
                
                                
                        
                            纳米技术                        
                
                                
                        
                            生物医学工程                        
                
                                
                        
                            弹性体                        
                
                                
                        
                            化学                        
                
                                
                        
                            物理化学                        
                
                                
                        
                            内分泌学                        
                
                                
                        
                            医学                        
                
                                
                        
                            电解质                        
                
                        
                    
            作者
            
                Xin Hu,Yimin Chen,Wei Xu,Yi Zhu,Donggun Kim,Ye Fan,Baozhi Yu,Ying Chen            
         
                    
            出处
            
                                    期刊:Small
                                                         [Wiley]
                                                        日期:2023-04-24
                                                        卷期号:19 (34)
                                                        被引量:30
                                 
         
        
    
            
            标识
            
                                    DOI:10.1002/smll.202301604
                                    
                                
                                 
         
        
                
            摘要
            
            3D printing technology has demonstrated great potential in fabricating flexible and customizable high-performance batteries, which are highly desired in the forthcoming intelligent and ubiquitous energy era. However, a significant performance gap, especially in cycling stability, still exists between the 3D-printed and conventional electrodes, seriously limiting the practical applications of 3D-printed batteries. Here, for the first time, a series of thermoplastic polyurethane (TPU)-based 3D-printed electrodes is developed via fused deposition modeling for flexible and customizable high-performance lithium-ion batteries. The TPU-based electrode filaments in kilogram order are prepared via a facile extrusion method. As a result, the electrodes are well-printed with high dimensional accuracy, flexibility, and mechanical stability. Notably, 3D-printed TPU-LFP electrodes exhibit a capacity retention of 100% after 300 cycles at 1C, which is among the best cycling performance of all the reported 3D-printed electrodes. Such excellent performance is associated with the superb stress cushioning properties of the TPU-based electrodes that can accommodate the volume change during the cycling and thus significantly prevent the collapse of 3D-printed electrode structures. The findings not only provide a new avenue to achieve customizable and flexible batteries but also guide a promising way to erase the performance gap between 3D-printed and conventional lithium-ion batteries.
         
            
 
                 
                
                    
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