University of Chinese Academy of Science , Beijing 100049 , P. R. China.
ACS Appl Mater Interfaces. 2018 Dec 5;10(48):41398-41406. doi: 10.1021/acsami.8b15774. Epub 2018 Nov 16.
Development of highly efficient catalysts based on transition metal oxides (TMOs) is desirable and remains a big challenge for lithium-oxygen (Li-O) batteries. In the present work, atomic-thick TiO(B) nanosheets decorated with ultrafine CoO nanocrystals (CoO-TiO(B)) were synthesized and utilized as cathode catalyst in Li-O batteries by designing a hybrid and inducing oxygen vacancies. The XPS characterization results suggested that the introduction of CoO nanocrystals could induce numerous oxygen vacancies in the TiO(B) nanosheets through Co doping in the hybrid catalyst. The subsequent electrochemical experiments indicated that the Li-O batteries with the prepared hybrid catalysts showed high specific capacity (11000 mAhg), and good cycling stability (200 cycles at a limited capacity of 1000 mAhg) with low polarization (above 2.7 V for discharge medium voltage and below 4.0 V for charge medium voltage within 80 cycles). Furthermore, a possible working mechanism was proposed for a better understanding of the high performance of CoO-TiO(B) catalysts for the Li-O batteries. This work also provided new insights into designing efficient catalysts through interface engineering between 2D (two-dimensional) TMOs and 0D (zero-dimensional) TMOs for Li-O batteries or other catalysis-related fields.
基于过渡金属氧化物 (TMO) 的高效催化剂的开发是可取的,并且仍然是锂-氧 (Li-O) 电池的一个巨大挑战。在本工作中,通过设计混合体并诱导氧空位,合成了原子层厚的 TiO(B) 纳米片负载的超细 CoO 纳米晶 (CoO-TiO(B)),并将其用作 Li-O 电池的阴极催化剂。XPS 特征化结果表明,通过在混合催化剂中 Co 掺杂,引入的 CoO 纳米晶可以在 TiO(B) 纳米片中诱导大量氧空位。随后的电化学实验表明,具有所制备的混合催化剂的 Li-O 电池表现出高比容量(11000 mAhg),良好的循环稳定性(在 1000 mAhg 的限制容量下 200 次循环),低极化(在 80 次循环内,放电中压高于 2.7 V,充电中压低于 4.0 V)。此外,提出了一种可能的工作机制,以更好地理解 CoO-TiO(B) 催化剂在 Li-O 电池或其他与催化相关的领域中的高性能。这项工作还为通过二维 (2D) TMO 和零维 (0D) TMO 之间的界面工程为 Li-O 电池或其他催化相关领域设计高效催化剂提供了新的见解。