School of Integrated Circuits, School of Optical and Electronic Information, Wuhan National Laboratory for Optoelectronics (WNLO), Huazhong University of Science and Technology, Wuhan, 430074, P. R. China.
Beijing Advanced Innovation Center for Materials Genome Engineering, Institute of Physics, Chinese Academy of Sciences/Beijing National Laboratory for Condensed Matter Physics, Beijing, 100190, P. R. China.
Adv Sci (Weinh). 2023 May;10(14):e2207563. doi: 10.1002/advs.202207563. Epub 2023 Mar 20.
The desperate pursuit of high gravimetric specific energy leads to the ignorance of volumetric energy density that is one of the basic requirements for batteries. Due to the high volumetric capacity, less-prone formation of dendrite, and low reduction potential of Mg metal, rechargeable Mg batteries are considered with innately high volumetric energy density. Nevertheless, the substantial elevation in energy density is compromised by extremely excessive Mg metal anode. Herein, the proof-of-concept of anode-free Mg Mo S -MgS/Cu batteries is proposed, in which MgS as the premagnesiation additive constantly decomposes to replenish Mg loss by electrolyte corrosion over cycling, while both Mg Mo S and MgS acts as the active material to reversibly provide high capacities. Besides, Mg Mo S shows superior catalytic activity on the decomposition of MgS and provides the strong affinity to polysulfides to restrain their dissolution. Consequently, the anode-free Mg Mo S -MgS/Cu batteries deliver a high reversible capacity of 190 mAh g with the capacity retention of 92% after 100 cycles, corresponding to the highly competitive energy density of 420 Wh L . The proposed anode-free Mg battery here spotlights the great promise of Mg batteries in achieving high volumetric energy densities, which will significantly expedite the advances of Mg batteries in practice.
对高重量比比能量的盲目追求导致了人们对电池基本要求之一的体积能量密度的忽视。由于具有较高的体积容量、不易形成枝晶以及镁金属还原电位较低,可再充电镁电池被认为具有先天的高体积能量密度。然而,由于镁金属阳极的体积过大,电池的能量密度大幅降低。在此,提出了无阳极镁 MoS-MgS/Cu 电池的概念验证,其中 MgS 作为预镁化添加剂,通过电解质腐蚀不断分解来补充循环过程中的镁损失,而 MgMoS 和 MgS 都作为活性材料,可逆地提供高容量。此外,MgMoS 对 MgS 的分解表现出优异的催化活性,并提供对多硫化物的强亲和力以抑制其溶解。因此,无阳极镁 MoS-MgS/Cu 电池可提供 190 mAh g 的高可逆容量,经过 100 次循环后容量保持率为 92%,相应的能量密度高达 420 Wh L。这里提出的无阳极镁电池凸显了镁电池在实现高体积能量密度方面的巨大潜力,这将极大地推动镁电池在实际中的应用。