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Micro-sized Si-C Composite with Interconnected Nanoscale Building Blocks as High-Performance Anodes for Practical Application in Lithium-Ion Batteries

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TLDR
In this paper, a Si-C nanocomposites (e.g., nanowires, nanotubes, or nanoparticles) has been used to improve the capacity and cycling stability of high-energy-density lithium-ion batteries.
Abstract
The emerging markets of electric vehicles (EV) and plug-in hybrid electric vehicles (PHEV) generate a tremendous demand for low-cost lithium-ion batteries (LIBs) with high energy and power densities and long cycling life. [ 1–4 ] The development of such LIBs requires development of low cost, high energy-density cathode and anode materials. Conventional anode materials in commercial LIBs are primarily synthetic graphite-based materials with a capacity of ∼ 370 mAh/g. [ 5 ] Improvements in anode performance, particularly in anode capacity, are essential to achieving high energy densities in LIBs for EV and PHEV applications. Silicon has been intensively pursued as the most promising anode material for high-energy-density LIBs because of its high specifi c capacity ( > 3500 mAh/g) and abundance. [ 6 ] Despite its high capacity, Si suffers from fast capacity fading caused by its large volume change ( > 300%) during lithiation/delithiation and the serious issues stemming from this volume change, e.g., unstable solid electrolyte interphase (SEI) and disintegration (cracking and crumbling) of the electrode structure. [ 7 , 8 ] The development of Si-C nanocomposites (e.g., nanowires, nanotubes, or nanoparticles) has been widely studied. [ 9–18 ] These nanocomposites proved to be an effective method of improving capacity and cycling stability, since nano-sized Si can alleviate fracture during volume changes and the contact between Si and carbon can maintain electrical contact and improve conductivity of the nanocomposites. However, practical application of nano-sized Si materials in LIBs is diffi cult. First, achieving a high tap density is important for fabrication of high-energy LIBs for EVs and PHEVs, because it offers a high volumetric energy density. Unfortunately, the tap density of nano-sized materials is generally low, which in turn holds down their volumetric capacity. [ 19 ] Furthermore, preparation of nano-sized Si either requires chemical/physical vapor deposition or involves complicated processes, leading to costly, low-yield synthesis that is diffi cult to scale up to practical levels. [ 20–22 ] To date, the abundance of Si has not been fully capitalized upon due to lack

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Citations
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Strategy for enhanced performance of silicon nanoparticle anodes for lithium-ion batteries

TL;DR: In this article , a dual protection strategy was proposed to improve the cycling stability of commercial silicon nanoparticles for lithium-ion battery anode materials, and the Si/s-C@TiO2 composite was produced by the hydrothermal method.
Journal ArticleDOI

Mechanochemistry assisted surface chemical modification on hard carbon for sodium storage: Size effect

TL;DR: In this article , the size effect on the variations of the structural and electrochemical properties after mechanochemical treatments is studied through hard carbon spheres (CSs) with sizes of 170 nm, 492 nm and 0.9 μm.
Journal ArticleDOI

Highly active SiO2@C nanofiber: high rate and long cycling for lithium ion batteries

TL;DR: SiO2-based anodes for lithium ion batteries suffer from low conductivity and volume change in charge/discharge processes, which can effectively improve the activity of SiO2 for Li+ storage.

CoFe 2 O 4 -Graphene Nanocomposites Synthesized through An Ultrasonic Method with Enhanced Performances as Anode Materials for Li-ion Batteries

TL;DR: In this article, CoFe2O4-graphene nanosheets were synthesized through an ultrasonic method, and their electrochemical performances as Li-ion battery electrode were improved by annealing processes.
Journal ArticleDOI

Real-Time Observation of Mechanical Evolution of Micro-Sized Si Anodes by In Situ Atomic Force Microscopy

TL;DR: In this article , the authors employed in situ atomic force microscopy (AFM) to characterize the morphological evolution of micro-sized Si anode during electrochemical cycling in real time.
References
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Journal ArticleDOI

Building better batteries

TL;DR: Researchers must find a sustainable way of providing the power their modern lifestyles demand to ensure the continued existence of clean energy sources.
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Nanostructured materials for advanced energy conversion and storage devices

TL;DR: This review describes some recent developments in the discovery of nanoelectrolytes and nanoeLECTrodes for lithium batteries, fuel cells and supercapacitors and the advantages and disadvantages of the nanoscale in materials design for such devices.
Journal ArticleDOI

High-performance lithium battery anodes using silicon nanowires

TL;DR: The theoretical charge capacity for silicon nanowire battery electrodes is achieved and maintained a discharge capacity close to 75% of this maximum, with little fading during cycling.
Journal ArticleDOI

Lithium Batteries and Cathode Materials

TL;DR: This paper will describe lithium batteries in more detail, building an overall foundation for the papers that follow which describe specific components in some depth and usually with an emphasis on the materials behavior.
Journal ArticleDOI

Battery materials for ultrafast charging and discharging

TL;DR: It is shown that batteries which obtain high energy density by storing charge in the bulk of a material can also achieve ultrahigh discharge rates, comparable to those of supercapacitors.
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