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Title: Biopolymer‐assisted Synthesis of P‐doped TiO 2 Nanoparticles for High‐performance Lithium‐ion Batteries: A Comprehensive Study

Journal Article · · Batteries & Supercaps
 [1];  [1];  [2];  [3];  [1];  [1];  [4];  [4];  [1];  [3];  [4];  [1]; ORCiD logo [1]
  1. Materials Science, Energy, and Nano-engineering Department Mohammed VI Polytechnic University Ben Guerir Morocco
  2. Materials Science, Energy, and Nano-engineering Department Mohammed VI Polytechnic University Ben Guerir Morocco, Laboratory of Physic-Chemistry, Materials and Catalysis department of chemistry Faculty of Sciences Ben M'sik University Hassan II of Casablanca Casablanca Morocco
  3. Department of Chemistry and Institute of Nanotechnology and Advanced Materials Bar-Ilan University Ramat-Gan 52900 Israel
  4. Chemical Sciences and engineering Division Argonne National Laboratory 9700 S. Cass Avenue Lemont IL 60439 USA

Abstract TiO 2 material has gained significant attention for large‐scale energy storage due to its abundant, low‐cost, and environmentally friendly properties, as well as the availability of various nanostructures. Phosphorus doping has been established as an effective technique for improving electronic conductivity and managing the slow ionic diffusion kinetics of TiO 2 . In this study, non‐doped and phosphorus doped TiO 2 materials were synthesized using sodium alginate biopolymer as chelating agent. The prepared materials were evaluated as anode materials for lithium‐ion batteries (LIBs). The electrodes exhibit remarkable electrochemical performance, including a high reversible capacity of 235 mAh g −1 at 0.1 C and excellent first coulombic efficiency of 99 %. An integrated approach, combining operando XRD and ex‐situ XAS, comprehensively investigates the relationship between phosphorus doping, material structure, and electrochemical performance, reinforced by analytical tools and first principles calculations. Furthermore, a full cell was designed using 2 %P‐doped TiO 2 anode and LiFePO 4 cathode. The output voltage was about 1.6 V with high initial specific capacity of 148 mAh g −1 , high rate‐capability of 120 mAh g −1 at 1 C, and high‐capacity retention of 96 % after 1000 cycles at 1 C.

Sponsoring Organization:
USDOE
OSTI ID:
2281273
Alternate ID(s):
OSTI ID: 2350619
Journal Information:
Batteries & Supercaps, Journal Name: Batteries & Supercaps Journal Issue: 1 Vol. 7; ISSN 2566-6223
Publisher:
Wiley Blackwell (John Wiley & Sons)Copyright Statement
Country of Publication:
Germany
Language:
English

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