Cheong Jun Young, Lee Seokwon, Lee Jiyoung, Lim Haeseong, Cho Su-Ho, Lee Doh C, Kim Il-Doo
Department of Materials Science and Engineering, Korea Advanced Institute of Science and Technology 291 Daehak-ro, Yuseong-gu Daejeon 305-701 Republic of Korea
Department of Chemical and Biomolecular Engineering, Korea Advanced Institute of Science and Technology 291 Daehak-ro, Yuseong-gu Daejeon 305-701 Republic of Korea.
RSC Adv. 2019 Sep 2;9(47):27257-27263. doi: 10.1039/c9ra03187a. eCollection 2019 Aug 29.
Stable electrode materials with guaranteed long-term cyclability are indispensable for advanced lithium-ion batteries. Recently, delafossite CuFeO has received considerable attention, due to its relative structural integrity and cycling stability. Nevertheless, the low conductivity of delafossite and its relatively low theoretical capacity prevent its use as feasible electrodes for next-generation batteries that require higher reversible capacities. In this work, we suggest a simple and straightforward approach to prepare CuFeO-NiFeO by introducing Ni precursor into Cu and Fe precursor to form NiFeO, which exhibits higher capacity but suffers from capacity fading, through sol-gel process and subsequent heat treatments. The presence of both NiFeO and CuFeO is apparent, and the heterostructure arising from the formation of NiFeO within CuFeO renders some synergistic effects between the two active materials. As a result, the CuFeO-NiFeO hybrid sample exhibits excellent cycling stability and improved rate capability, and can deliver stable electrochemical performance for 800 cycles at a current density of 5.0 A g. This work is an early report on introducing a foreign element into the sol-gel process to fabricate heterostructures as electrodes for batteries, which open up various research opportunities in the near future.
具有长期循环稳定性的稳定电极材料对于先进的锂离子电池来说是必不可少的。最近,铜铁矿CuFeO₂因其相对的结构完整性和循环稳定性而受到了广泛关注。然而,铜铁矿的低电导率及其相对较低的理论容量阻碍了它作为下一代需要更高可逆容量的电池的可行电极的应用。在这项工作中,我们提出了一种简单直接的方法,通过在铜和铁前驱体中引入镍前驱体来制备CuFeO₂-NiFe₂O₄,后者通过溶胶-凝胶法和后续热处理表现出更高的容量,但存在容量衰减问题。NiFe₂O₄和CuFeO₂均明显存在,并且在CuFeO₂中形成NiFe₂O₄所产生的异质结构使这两种活性材料之间产生了一些协同效应。结果,CuFeO₂-NiFe₂O₄混合样品表现出优异的循环稳定性和改善的倍率性能,并且在5.0 A g⁻¹的电流密度下可以稳定循环800次。这项工作是关于在溶胶-凝胶过程中引入外来元素以制备异质结构作为电池电极的早期报道,这在不久的将来开辟了各种研究机会。