4.5 Article

Tailoring the Void Space of a Silicon Anode for High-Capacity and Low-Expansion Lithium Storage

相关参考文献

注意:仅列出部分参考文献,下载原文获取全部文献信息。
Article Chemistry, Multidisciplinary

Swallowing Lithium Dendrites in All-Solid-State Battery by Lithiation with Silicon Nanoparticles

Jianming Tao et al.

Summary: This study introduces a strategy to suppress and swallow the growth of Li dendrites by filling silicon nanoparticles, aiming to enhance the performance of all-solid-state Li batteries. Experimental results demonstrate improved stability and cycling performance, validating the effectiveness of the proposed strategy for practical application in ASSLBs.

ADVANCED SCIENCE (2022)

Article Multidisciplinary Sciences

A Li2S-based all-solid-state battery with high energy and superior safety

Yuzhao Liu et al.

Summary: This study proposes intrinsically safe solid-state rechargeable batteries that combine high energy and cell reliability through a multielectron redox reaction between Li2S cathode and Si anode in a solid-state polymer electrolyte. These batteries offer high specific energy, fast rate response, negligible self-discharge, and good temperature adaptability, while also providing reversible energy storage against extreme abuse and environmental damage.

SCIENCE ADVANCES (2022)

Article Chemistry, Applied

Interfacial nitrogen engineering of robust silicon/MXene anode toward high energy solid-state lithium-ion batteries

Xiang Han et al.

Summary: This study presents a self-integrated and monolithic Si/MXene electrode structure with interfacial nitrogen engineering. The engineered interface enhances mechanical adhesion and lithium ion transportation, resulting in high-rate performance and stable cycling. This concept holds great significance for the development of solid-state batteries.

JOURNAL OF ENERGY CHEMISTRY (2022)

Article Chemistry, Physical

Suppression of thermal runaway by continuous heat generation using porous silicon covered with a thin oxide layer

Hideyuki Nakano et al.

Summary: The study found that the reaction between lithium in porous silicon and the electrolyte progressed from 200 degrees C or lower, consuming lithium to form Li2CO3 and LiOH with a mildly exothermic reaction, enhancing electrode safety. At temperatures above 200 degrees C, the formation of high entropy LiF by a reaction of PF5 derived from LiPF6 and lithium in the electrode suppressed the exothermic reaction in the high temperature range due to the small amount of LiF formation and its low crystallinity.

JOURNAL OF POWER SOURCES (2021)

Article Multidisciplinary Sciences

Carbon-free high-loading silicon anodes enabled by sulfide solid electrolytes

Darren H. S. Tan et al.

Summary: The research successfully achieved stable operation of silicon anodes by using the interface passivating properties of sulfide solid electrolytes. Analysis showed that this approach eliminates continuous interfacial growth and irreversible lithium losses. The promising performance of microsilicon full cells can be attributed to the ideal interface properties between microsilicon and sulfide electrolytes and the unique chemomechanical behavior of the lithium-silicon alloy.

SCIENCE (2021)

Review Chemistry, Multidisciplinary

Integration of Graphite and Silicon Anodes for the Commercialization of High-Energy Lithium-Ion Batteries

Sujong Chae et al.

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION (2020)

Article Chemistry, Multidisciplinary

Microstructure Controlled Porous Silicon Particles as a High Capacity Lithium Storage Material via Dual Step Pore Engineering

Myungbeom Sohn et al.

ADVANCED FUNCTIONAL MATERIALS (2018)

Article Chemistry, Multidisciplinary

Few-Layer Silicene Nanosheets with Superior Lithium-Storage Properties

Jingjing Liu et al.

ADVANCED MATERIALS (2018)

Article Chemistry, Multidisciplinary

A Flexible Solid Electrolyte Interphase Layer for Long-Life Lithium Metal Anodes

Nian-Wu Li et al.

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION (2018)

Review Energy & Fuels

Batteries and fuel cells for emerging electric vehicle markets

Zachary P. Cano et al.

NATURE ENERGY (2018)

Article Electrochemistry

The Development and Future of Lithium Ion Batteries

George E. Blomgren

JOURNAL OF THE ELECTROCHEMICAL SOCIETY (2017)

Article Multidisciplinary Sciences

Inward lithium-ion breathing of hierarchically porous silicon anodes

Qiangfeng Xiao et al.

NATURE COMMUNICATIONS (2015)

Article Materials Science, Multidisciplinary

The nanostructure of the Si-Al eutectic and its use in lithium batteries

Wenchao Zhou et al.

MRS COMMUNICATIONS (2013)

Review Chemistry, Physical

Li-O2 and Li-S batteries with high energy storage

Peter G. Bruce et al.

NATURE MATERIALS (2012)

Review Chemistry, Multidisciplinary

Challenges in the development of advanced Li-ion batteries: a review

Vinodkumar Etacheri et al.

ENERGY & ENVIRONMENTAL SCIENCE (2011)

Review Chemistry, Physical

A review of the electrochemical performance of alloy anodes for lithium-ion batteries

Wei-Jun Zhang

JOURNAL OF POWER SOURCES (2011)

Review Multidisciplinary Sciences

Electrical Energy Storage for the Grid: A Battery of Choices

Bruce Dunn et al.

SCIENCE (2011)

Article Chemistry, Physical

High-performance lithium-ion anodes using a hierarchical bottom-up approach

A. Magasinski et al.

NATURE MATERIALS (2010)

Article Chemistry, Physical

High voltage spinel oxides for Li-ion batteries: From the material research to the application

Sebastien Patoux et al.

JOURNAL OF POWER SOURCES (2009)

Article Multidisciplinary Sciences

Building better batteries

M. Armand et al.

NATURE (2008)

Article Nanoscience & Nanotechnology

High-performance lithium battery anodes using silicon nanowires

Candace K. Chan et al.

NATURE NANOTECHNOLOGY (2008)

Article Electrochemistry

Reversible cycling of crystalline silicon powder

M. N. Obrovac et al.

JOURNAL OF THE ELECTROCHEMICAL SOCIETY (2007)

Review Chemistry, Physical

Nanostructured materials for advanced energy conversion and storage devices

AS Aricò et al.

NATURE MATERIALS (2005)

Article Electrochemistry

Structural changes in silicon anodes during lithium insertion/extraction

MN Obrovac et al.

ELECTROCHEMICAL AND SOLID STATE LETTERS (2004)