[3] Y L DING, Z P CANO, A P YU et al. Automotive Li-ion batteries: current status and future perspectives. Electrochemical Energy Reviews(2019).
[4] C H MU, S A LOU, R ALI et al. Carbon-decorated LiMn2O4 nanorods with enhanced performance for supercapacitors. Journal of Alloys and Compounds(2019).
[5] Z X ZHU, M M WANG, Y H MENG et al. A high-rate lithium manganese oxide-hydrogen battery. Nano Letters(2020).
[6] S Y LI, K L ZHU, J L LIU et al. Porous LiMn2O4 microspheres with different pore size: preparation and application as cathode materials for lithium ion batteries. Journal of Electrochemical Energy Conversion and Storage(2019).
[7] M W XIANG, X Y ZHOU, Z F ZHANG et al. LiMn2O4 prepared by liquid phase flameless combustion with F-Doped for lithium- ion battery cathode materials. Advanced Materials Research(2013).
[8] Q Q JIANG, D D LIU, H ZHANG et al. Plasma-assisted sulfur doping of LiMn2O4 for high-performance lithium-ion batteries. Journal of Physical Chemistry C(2015).
[9] J T LIU, G LI, Y YU et al. Synthesis and electrochemical performance evaluations of polyhedra spinel LiAl
[10] P CHANDA, BANSALA VIVEK, V S SUKRITIA. Investigations of spinel LiZn
[11] L L XIONG, Y L XU, P LEI et al. The electrochemical performance of sodium-ion-modified spinel LiMn2O4 used for lithium-ion batteries. Journal of Solid State Electrochemistry(2014).
[12] L L XIONG, Y L XU, X XIAO et al. The effect of K-ion on the electrochemical performance of spinel LiMn2O4. Electronic Materials Letters(2015).
[13] K CHUDZIK, M ŚWIĘTOSŁAWSKI, M BAKIERSKA et al. Electrochemical properties of K and S doped LiMn2O4 studied by GITT and EIS. Electrochimica Acta(2021).
[14] K CHUDZIK, M ŚWIĘTOSŁAWSKI, M BAKIERSKA et al. Surface modification and carbon coating effect on a high-performance K and S doped LiMn2O4. Applied Surface Science(2020).
[15] M BAKIERSKA, M ŚWIĘTOSŁAWSKI, K CHUDZIK et al. Enhancing the lithium ion diffusivity in LiMn2O4-
[16] R A RODRÍGUEZ, E L PÉREZ-CAPPE, Y M LAFFITA et al. Structural defects in LiMn2O4 induced by gamma radiation and its influence on the Jahn-Teller effect. Solid State Ionics(2018).
[17] Z M YU, L C ZHAO. Structure and electrochemical properties of LiMn2O4. Transactions of Nonferrous Metals Society of China(2007).
[18] F MARCHINI, E J CALVO, F J WILLIAMS. Effect of the electrode potential on the surface composition and crystal structure of LiMn2O4 in aqueous solutions. Electrochimica Acta(2018).
[19] H Y ZHAO, F LI, X Z BAI et al. Enhanced cycling stability of LiCu
[20] K RAGAVENDRAN, H L CHOU, L LU et al. Crystal habits of LiMn2O4 and their influence on the electrochemical performance. Materials Science and Engineering B: Solid-State Materials for Advanced Technology(2011).
[21] X Y WANG, H HAO, J L LIU et al. A novel method for preparation of macroposous lithium nickel manganese oxygen as cathode material for lithium ion batteries. Electrochimica Acta(2011).
[22] S CHEN, Z CHEN, C B CAO. Mesoporous spinel LiMn2O4 cathode material by a soft-templating route. Electrochimica Acta(2016).
[23] S ZHOU, G X WANG, Y XIAO et al. Influence of charge status on the stress safety properties of Li(Ni1/3Co1/3Mn1/3)O2 cells. RSC Advances(2016).
[24] V A SETHURAMAN, WINKLE N VAN, D P ABRAHAM et al. Real-time stress measurements in lithium-ion battery negative- electrodes. Journal of Power Sources(2012).
[26] N KIZILTAŞ-YAVUZ, M HERKLOTZ, A M HASHEM et al. Synthesis, structural, magnetic and electrochemical properties of LiNi1/3Mn1/3Co1/3O2 prepared by a Sol-Gel method using table sugar as chelating agent. Electrochimica Acta(2013).
[27] J GREELEY, R E WARBURTON, F C CASTRO et al. Oriented LiMn2O4 particle fracture from delithiation-driven surface stress. ACS Applied Materials and Interfaces(2020).
[28] M M THACKERAY. Exploiting the spinel structure for Li-ion battery applications: a tribute to John B. Goodenough. Advanced Energy Materials(2021).