Kim Hyunwoo, Choi Woosung, Yoon Jaesang, Lee Eunkang, Yoon Won-Sub
Department of Energy Science, Sungkyunkwan University, Suwon, 16419, South Korea.
Small. 2021 Apr;17(14):e2006433. doi: 10.1002/smll.202006433. Epub 2021 Mar 11.
In this study, four different MnO polymorphs are synthesized with a controlled morphology of hollow porous structures to systematically investigate the influences of polymorphs in conversion-based material. As the structure of these materials transforms into nanosized metal and maintains an extremely low-crystalline phase during cell operation, the effects of polymorphs are overlooked as compared to the case of insertion-based materials. Thus, differences in the ion storage behaviors among various MnO polymorphs are not well identified. Herein, the structural changes, charge storage reaction, and electrochemical performance of the different MnO polymorphs are investigated in detail. The experimental results demonstrate that the charge storage reactions, as part of which spinel-phased MnO formation is observed after lithiation and delithiation instead of recovery of the original phases, are similar for all the samples. However, the electrochemical performance varies depending on the initial crystal structure. Among the four polymorphs, the spinel-type λ-MnO delivers the highest reversible capacity of ≈1270 mAh g . The structural similarity between the cycled and pristine states of λ-MnO induces faster kinetics, resulting in the better electrochemical performance. These findings suggest that polymorphs are another important factor to consider when designing high-performance materials for next-generation rechargeable batteries.
在本研究中,合成了四种不同的MnO多晶型物,其具有可控的中空多孔结构形态,以系统地研究多晶型物对基于转化的材料的影响。由于这些材料的结构在电池运行过程中转变为纳米尺寸的金属并保持极低的结晶相,与基于嵌入的材料相比,多晶型物的影响被忽视了。因此,各种MnO多晶型物之间的离子存储行为差异尚未得到很好的识别。在此,详细研究了不同MnO多晶型物的结构变化、电荷存储反应和电化学性能。实验结果表明,电荷存储反应对于所有样品都是相似的,其中锂化和脱锂后观察到尖晶石相MnO的形成,而不是原始相的恢复。然而,电化学性能因初始晶体结构而异。在这四种多晶型物中,尖晶石型λ-MnO具有最高的可逆容量,约为1270 mAh g 。λ-MnO循环态和原始态之间的结构相似性导致更快的动力学,从而产生更好的电化学性能。这些发现表明,在设计下一代可充电电池的高性能材料时,多晶型物是另一个需要考虑的重要因素。