Skoltech Center for Energy Science and Technology , Skolkovo Institute of Science and Technology , Moscow 121205 , Russian Federation.
Department of Chemistry , Lomonosov Moscow State University , Moscow 119991 , Russian Federation.
ACS Appl Mater Interfaces. 2019 Apr 3;11(13):12431-12440. doi: 10.1021/acsami.8b21272. Epub 2019 Mar 21.
In this paper, we report on a novel α-VPO phosphate adopting the α-CrPO type structure as a promising anode material for rechargeable metal-ion batteries. Obtained by heat treatment of a structurally related hydrothermally prepared KTiOPO-type NHVOPO precursor under reducing conditions, the α-VPO material appears stable in a wide temperature range and possesses an interesting "sponged" needle-like particle morphology. The electrochemical performance of α-VPO as the anode material was examined in Li-, Na-, and K-based cells. The carbon-coated α-VPO/C composite exhibits 185, 110, and 37 mA h/g specific capacities respectively at the first discharge and around 120, 80, and 30 mA h/g at consecutive cycles at a C/10 rate. The considerable capacity drop after the first cycle in Li and Na cells is presumably due to irreversible alkali ion consumption taking place upon alkali-ion de/insertion. The EDX analysis of the recovered electrodes revealed an uptake of ∼23% of Na after the first discharge with significant cell parameter alteration validated by operando XRD measurements. In contrast to the known β-VPO anode materials, both Li and Na de/insertion into the new α-VPO proceed via an intercalation mechanism with the parent structural framework preserved but not via a conversion mechanism. The dimensionality of alkali-ion migration pathways and diffusion energy barriers was analyzed by the BVEL approach. Na-ion diffusion coefficients measured by the potentiostatic intermittent titration technique are in the range of (0.3-1.0)·10 cm/s, anticipating α-VPO as a prospective high-power anode material for Na-ion batteries.
本文报道了一种新颖的α-VPO 磷酸,其采用α-CrPO 型结构,是一种有前途的可充电金属离子电池的阳极材料。通过在还原条件下对结构相关的水热制备的 KTiOPO 型 NHVOPO 前体进行热处理得到的α-VPO 材料在很宽的温度范围内稳定,并且具有有趣的“海绵状”针状颗粒形态。在 Li、Na 和 K 基电池中,研究了α-VPO 作为阳极材料的电化学性能。碳涂层的α-VPO/C 复合材料在首次放电时分别表现出 185、110 和 37 mA h/g 的比容量,在 C/10 倍率下连续循环时分别约为 120、80 和 30 mA h/g。首次循环后在 Li 和 Na 电池中容量急剧下降,可能是由于在碱离子脱/插入过程中发生不可逆的碱离子消耗。对回收电极的 EDX 分析表明,首次放电后,Na 的吸收量约为 23%,并通过原位 XRD 测量验证了显著的电池参数变化。与已知的β-VPO 阳极材料不同,Li 和 Na 插入到新的α-VPO 中通过母结构框架保留的嵌入机制进行,而不是通过转化机制进行。通过 BVEL 方法分析了碱离子迁移途径和扩散能垒的维度。通过恒电位间歇滴定技术测量的 Na 离子扩散系数在(0.3-1.0)·10 cm/s 的范围内,预计α-VPO 是一种有前途的用于 Na 离子电池的高功率阳极材料。