Tin (Sn) anode suffers from considerable volume deformation, generating vast dilatation-induced stresses leading to pulverization for lithium-ion batteries (LIBs). Herein, the Sn–Fe–C composite anode material with a jujube cake-like structure where Sn/FeSn2 metalcore anchored on an N-doped carbon matrix is constructed. During the lithiation process, the intermetallic Fe–Sn (FeSn2) generates Fe nanoparticles, which are uniformly distributed in the Sn matrix to relieve internal stress and create a conductive network, thus enhancing electron conduction and ion diffusion kinetics. In addition, the N-doped carbon matrix maintains the material structural integrity and improves overall conductivity. Consequently, the Sn–Fe–C anode delivers a high ...
Robust and fast lithium energy storage with a high energy density is highly desired to accelerate th...
It is a formidable challenge to arrange tin nanoparticles in a porous matrix for the achievement of ...
Sn-based alloy materials are strong candidates to replace graphitic carbon as the anode for the next...
As a potential anode material for lithium-ion batteries (LIBs), metal tin shows a high specific capa...
Carbon-based anodes are the key limiting factor in increasing the volumetric capacity of lithium-ion...
A novel nanostructured SneFe2O3eC anode material, prepared by high-energy ball milling, is here orig...
textLithium-alloying anode materials have attracted much attention as an alternative to carbon due t...
In this work we disclose an electrode based on a formulation which differs from all those previously...
A tin-carbon composite synthesized by high energy mechanical milling (HEMM) technique is characteriz...
The demand of improvement in lithium-ion battery technology in terms of specific capacity and safety...
A tin-carbon composite synthesized by high energy mechanical milling (HEMM) technique is characteriz...
Although possessing a high specific capacity, the practical implementation of SnO2 nanoparticles as ...
Nanostructured Sn@C anode is synthesized by carbon coating of nanosized tin for Li-ion battery. The ...
Although various hosts have been proposed to accommodate the Lithium (Li) metal to solve the uneven ...
[[abstract]]Tin-based compounds/carbonaceous materials composite anodes for Li-ion rechargeable batt...
Robust and fast lithium energy storage with a high energy density is highly desired to accelerate th...
It is a formidable challenge to arrange tin nanoparticles in a porous matrix for the achievement of ...
Sn-based alloy materials are strong candidates to replace graphitic carbon as the anode for the next...
As a potential anode material for lithium-ion batteries (LIBs), metal tin shows a high specific capa...
Carbon-based anodes are the key limiting factor in increasing the volumetric capacity of lithium-ion...
A novel nanostructured SneFe2O3eC anode material, prepared by high-energy ball milling, is here orig...
textLithium-alloying anode materials have attracted much attention as an alternative to carbon due t...
In this work we disclose an electrode based on a formulation which differs from all those previously...
A tin-carbon composite synthesized by high energy mechanical milling (HEMM) technique is characteriz...
The demand of improvement in lithium-ion battery technology in terms of specific capacity and safety...
A tin-carbon composite synthesized by high energy mechanical milling (HEMM) technique is characteriz...
Although possessing a high specific capacity, the practical implementation of SnO2 nanoparticles as ...
Nanostructured Sn@C anode is synthesized by carbon coating of nanosized tin for Li-ion battery. The ...
Although various hosts have been proposed to accommodate the Lithium (Li) metal to solve the uneven ...
[[abstract]]Tin-based compounds/carbonaceous materials composite anodes for Li-ion rechargeable batt...
Robust and fast lithium energy storage with a high energy density is highly desired to accelerate th...
It is a formidable challenge to arrange tin nanoparticles in a porous matrix for the achievement of ...
Sn-based alloy materials are strong candidates to replace graphitic carbon as the anode for the next...