Please use this identifier to cite or link to this item: https://libjncir.jncasr.ac.in/xmlui/handle/10572/2430
Title: In-situ Stabilization of Tin Nanoparticles in Porous Carbon Matrix derived from Metal Organic Framework: High Capacity and High Rate Capability Anodes for Lithium-ion Batteries
Authors: Shiva, Konda
Jayaramulu, Kolleboyina
Rajendra, H. B.
Maji, Tapas Kumar
Bhattacharyya, Aninda J.
Keywords: Inorganic & Nuclear Chemistry
Sn@C
Metal-Organic Frameworks
Anode Materials
Specific Capacity
Rate Capability
Lithium-Ion Battery
Secondary Batteries
Hollow Carbon
Storage
Sn
Li
Composite
Electrodes
Nanotubes
Growth
Oxide
Issue Date: 2014
Publisher: Wiley-V C H Verlag Gmbh
Citation: Shiva, K; Jayaramulu, K; Rajendra, HB; Maji, T; Bhattacharyya, AJ, In-situ Stabilization of Tin Nanoparticles in Porous Carbon Matrix derived from Metal Organic Framework: High Capacity and High Rate Capability Anodes for Lithium-ion Batteries. Zeitschrift Fur Anorganische Und Allgemeine Chemie 2014, 640 (6) 1115-1118, http://dx.doi.org/10.1002/zaac.201300621
Zeitschrift Fur Anorganische Und Allgemeine Chemie
640
6
Abstract: It is a formidable challenge to arrange tin nanoparticles in a porous matrix for the achievement of high specific capacity and current rate capability anode for lithium-ion batteries. This article discusses a simple and novel synthesis of arranging tin nanoparticles with carbon in a porous configuration for application as anode in lithium-ion batteries. Direct carbonization of synthesized three-dimensional Sn-based MOF: [K2Sn2(1,4-bdc)(3)](H2O) (1) (bdc = benzenedicarboxylate) resulted in stabilization of tin nanoparticles in a porous carbon matrix (abbreviated as Sn@C). Sn@C exhibited remarkably high electrochemical lithium stability (tested over 100 charge and discharge cycles) and high specific capacities over a wide range of operating currents (0.2-5 Ag-1). The novel synthesis strategy to obtain Sn@C from a single precursor as discussed herein provides an optimal combination of particle size and dispersion for buffering severe volume changes due to Li-Sn alloying reaction and provides fast pathways for lithium and electron transport.
Description: Restricted Access
URI: https://libjncir.jncasr.ac.in/xmlui/10572/2430
ISSN: 0044-2313
Appears in Collections:Research Articles (Tapas Kumar Maji)

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