Hoang Huy Vo Pham, Kim Il Tae, Hur Jaehyun
Department of Chemical and Biological Engineering, Gachon University, Seongnam 13120, Gyeonggi, Korea.
Nanomaterials (Basel). 2022 Sep 27;12(19):3362. doi: 10.3390/nano12193362.
Various applications of gallium telluride have been investigated, such as in optoelectronic devices, radiation detectors, solar cells, and semiconductors, owing to its unique electronic, mechanical, and structural properties. Among the various forms of gallium telluride (e.g., GaTe, GaTe, GaTe, and GaTe), we propose a gallium (III) telluride (GaTe)-based composite (GaTe-TiO-C) as a prospective anode for Li-ion batteries (LIBs). The lithiation/delithiation phase change mechanism of GaTe was examined. The existence of the TiO-C hybrid buffering matrix improved the electrical conductivity as well as mechanical integrity of the composite anode for LIBs. Furthermore, the impact of the C concentration on the performance of GaTe-TiO-C was comprehensively studied through cyclic voltammetry, differential capacity analysis, and electrochemical impedance spectroscopy. The GaTe-TiO-C electrode showed high rate capability (capacity retention of 96% at 10 A g relative to 0.1 A g) as well as high reversible specific capacity (769 mAh g after 300 cycles at 100 mA g). The capacity of GaTe-TiO-C was enhanced by the synergistic interaction of TiO and amorphous C. It thereby outperformed the majority of the most recent Ga-based LIB electrodes. Thus, GaTe-TiO-C can be thought of as a prospective anode for LIBs in the future.
由于碲化镓具有独特的电子、机械和结构特性,其在光电器件、辐射探测器、太阳能电池和半导体等领域的各种应用已得到研究。在碲化镓的各种形式(如GaTe、GaTe、GaTe和GaTe)中,我们提出一种基于碲化镓(III)(GaTe)的复合材料(GaTe-TiO-C)作为锂离子电池(LIB)的潜在阳极。研究了GaTe的锂化/脱锂相变机制。TiO-C混合缓冲基体的存在提高了复合阳极的电导率以及机械完整性。此外,通过循环伏安法、微分电容分析和电化学阻抗谱全面研究了C浓度对GaTe-TiO-C性能的影响。GaTe-TiO-C电极表现出高倍率性能(相对于0.1 A g,在10 A g时容量保持率为96%)以及高可逆比容量(在100 mA g下300次循环后为769 mAh g)。TiO和非晶碳的协同相互作用提高了GaTe-TiO-C的容量。因此,它优于大多数最新的基于Ga的LIB电极。因此,GaTe-TiO-C可被视为未来LIB的潜在阳极。