Recent advances in semimetallic pnictogen (As, Sb, Bi) based anodes for sodium-ion batteries: Structural design, charge storage mechanisms, key challenges and perspectives

IF 9 2区 材料科学 Q1 CHEMISTRY, PHYSICAL Nano Research Pub Date : 2021-03-24 DOI:10.1007/s12274-021-3334-y
Samrat Sarkar, Swagata Roy, Yufeng Zhao, Jiujun Zhang
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引用次数: 21

Abstract

In the recent times sodium ion batteries (SIBs) have come to the forefront as an economic and resourceful alternative to lithium-ion batteries (LIBs) for powering portable electronic devices and large-scale grid storage. As the specific capacity, energy density and long cycle life of batteries depend upon the performance of anode materials; their quest is the ultimate need of the hour. Among the anode materials, the semimetallic pnictogens (As, Sb, Bi) and their compounds offer high gravimetric/volumetric capacities, but suffer from undesired volume expansion and inferior electrical conductivity. Herein, this paper reviews the recent progress in semimetallic pnictogens as alloying anodes and their compounds mainly as conversion-alloying anodes. Various debatable sodiation mechanisms (intercalation or alloying) have been presented with emphasis on in situ/ex situ advanced characterization methods well supported by theoretical modeling and calculations. The reviewed electrochemical reaction mechanisms, coherent structural designs and engineering provide a vital understanding of the electrochemical processes of Na+ ion storage. The existing challenges and perspectives are also presented, and several research directions are proposed from the aspects of special morphological design, employing conductive substrates, electrolyte additives and reducing particle size for technical and commercial success of SIBs.

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钠离子电池用半金属镍原(As, Sb, Bi)阳极的最新进展:结构设计、电荷存储机制、关键挑战和展望
近年来,钠离子电池(sib)作为锂离子电池(lib)的一种经济且资源丰富的替代品,已成为便携式电子设备和大规模电网存储的首选。电池的比容量、能量密度和长循环寿命取决于负极材料的性能;他们的探索是当前最迫切的需要。在负极材料中,半金属致烟原(As, Sb, Bi)及其化合物具有较高的重量/体积容量,但存在不理想的体积膨胀和较差的导电性。本文综述了半金属致病菌合金阳极及其化合物(主要为转化合金阳极)的研究进展。各种有争议的酸化机制(插层或合金化)已经提出,重点是原位/非原位先进表征方法,并得到理论建模和计算的支持。综述了电化学反应机理、连贯的结构设计和工程,为理解Na+离子存储的电化学过程提供了重要的基础。并从特殊的形态设计、导电衬底的使用、电解质添加剂的添加和减小颗粒尺寸等方面提出了sib在技术和商业上取得成功的几个研究方向。
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来源期刊
Nano Research
Nano Research 化学-材料科学:综合
CiteScore
14.30
自引率
11.10%
发文量
2574
审稿时长
1.7 months
期刊介绍: Nano Research is a peer-reviewed, international and interdisciplinary research journal that focuses on all aspects of nanoscience and nanotechnology. It solicits submissions in various topical areas, from basic aspects of nanoscale materials to practical applications. The journal publishes articles on synthesis, characterization, and manipulation of nanomaterials; nanoscale physics, electrical transport, and quantum physics; scanning probe microscopy and spectroscopy; nanofluidics; nanosensors; nanoelectronics and molecular electronics; nano-optics, nano-optoelectronics, and nano-photonics; nanomagnetics; nanobiotechnology and nanomedicine; and nanoscale modeling and simulations. Nano Research offers readers a combination of authoritative and comprehensive Reviews, original cutting-edge research in Communication and Full Paper formats. The journal also prioritizes rapid review to ensure prompt publication.
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