| Literature DB >> 25351344 |
Won-Sub Yoon1, Otto Haas2, Shoaib Muhammad1, Hyunchul Kim1, Wontae Lee1, Donghwi Kim1, Daniel A Fischer3, Cherno Jaye3, Xiao-Qing Yang4, Mahalingam Balasubramanian5, Kyung-Wan Nam6.
Abstract
Tracking thermally induced reactions has always been challenging for electrode materials of electrochemical battery systems. Traditionally, a variety of calorimetric techniques and in situ XRD at elevated temperatures has been used to evaluate the thermal stability of electrode materials. These techniques are capable of providing variations in heat capacity, mass and average bulk composition of materials only. Herein, we report investigation of thermal characteristics of Li0.33Ni0.8Co0.15Al0.05O2 by using in situ soft XAS measurements in combination with XRD. Fluorescence yield and partial electron yield measurements are used simultaneously to obtain element selective surface and bulk information. Fluorescence yield measurements reveal no energy change of the absorption peak and thus no valence state change in the bulk. However, electron yield measurements indicate that NiO-type rock salt structure is formed at the surface at temperatures above 200°C while no evidence for a surface reaction near Co sites in investigated temperature range is found. These results clearly show that in situ soft XAS can give a unique understanding of the role of each element in the structural transformation under thermal abuse offering a useful guidance in developing new battery system with improved safety performance.Entities:
Year: 2014 PMID: 25351344 PMCID: PMC4212228 DOI: 10.1038/srep06827
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1In situ XRD patterns of Li0.33Ni0.8Co0.15Al0.05O2 cathode material when heated from 25°C to 300°C in the absence of electrolyte.
Figure 2Schematic diagram of (a) in situ soft XAS experimental setup and (b) sample heater with heating stage for in situ soft XAS experiment.
W. Y. and S. M. created this figure.
Figure 3Normalized XAS spectra of Li0.33Ni0.8Co0.15Al0.05O2 cathode material at different temperatures using (a) Ni L-edge FY mode, (b) Ni L-edge PEY mode, (c) Co L-edge FY mode and (d) Co L-edge PEY mode.
Figure 4Normalized O K-edge XAS spectra of Li0.33Ni0.8Co0.15Al0.05O2 cathode material at different temperatures using (a) FY mode and (b) PEY mode.