Life Cycle Analysis of a Green Solvothermal Synthesis of LFP Nanoplates for Enhanced LIBs in Chile

被引:1
|
作者
Cofre, Patricio
Viton, Maria de Lucia
Ushak, Svetlana
Grageda, Mario [1 ]
机构
[1] Univ Antofagasta, Dept Ingn Quim & Proc Minerales, Campus Coloso,Ave Univ Antofagasta, Antofagasta 02800, Chile
关键词
batteries; LiFePO4; life cycle analysis; solvothermal synthesis; ELECTROCHEMICAL PROPERTIES; LITHIUM; DIFFUSION;
D O I
10.3390/nano13091486
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Despite the structural and electrochemical advantages of LiFePO4 (LFP) as a cathode material, the solid-state reaction commonly used as a method to produce it at the industrial level has known disadvantages associated with high energy and fossil fuel consumption. On the other hand, solution-based synthesis methods present a more efficient way to produce LFP and have advantages such as controlled crystal growth, homogeneous morphology, and better control of pollutant emissions because the reaction occurs within a closed system. From an environmental point of view, different impacts associated with each synthesis method have not been studied extensively. The use of less polluting precursors during synthesis, as well as efficient use of energy and water, can provide new insights into the advantages of each cathode material for more environmentally friendly batteries. In this work, a solvothermal method is compared to a solid-state synthesis method commonly used to elaborate LFPs at the commercial level in order to evaluate differences in the environmental impacts of both processes. The solvothermal method used was developed considering the reutilization of solvent, water reflux, and a low thermal treatment to reduce pollutant emissions. As a result, a single high crystallinity olivine phase LFP was successfully synthesized. The use of ethylene glycol (EG) as a reaction medium enabled the formation of crystalline LFP at a low temperature (600 degrees C) with a nano-plate-like shape. The developed synthesis method was evaluated using life cycle analysis (LCA) to compare its environmental impact against the conventional production method. LCA demonstrated that the alternative green synthesis process represents 60% and 45% of the Resource Depletion impact category (water and fossil fuels, respectively) of the conventional method. At the same time, in the Climate change and Particular matter impact categories, the values correspond to 49 and 38% of the conventional method, respectively.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Facile Green Synthesis of WO3.H2O Nanoplates and WO3 Nanowires with Enhanced Photoelectrochemical Performance
    Nayak, Arpan Kumar
    Sohn, Youngku
    Pradhan, Debabrata
    CRYSTAL GROWTH & DESIGN, 2017, 17 (09) : 4949 - 4957
  • [32] A modified solvothermal synthesis of porous Mn3O4 for supercapacitor with excellent rate capability and long cycle life
    Qiao, Yuqing
    Sun, Qujiang
    Xi, Jianyi
    Cui, Haiying
    Tang, Yongfu
    Wang, Xianhui
    JOURNAL OF ALLOYS AND COMPOUNDS, 2016, 660 : 416 - 422
  • [33] Rules and benefits of Life Cycle Assessment in green chemical process and synthesis design: a tutorial review
    Kralisch, Dana
    Ott, Denise
    Gericke, Doerthe
    GREEN CHEMISTRY, 2015, 17 (01) : 123 - 145
  • [34] Green synthesis of nanoporous Si/C anode using NaCl template with improved cycle life
    Fan, Xu
    Jiang, Xiangping
    Wang, Wei
    Liu, Zhaoping
    MATERIALS LETTERS, 2016, 180 : 109 - 113
  • [35] Life cycle cost analysis of lightweight green concrete utilizing recycled plastic aggregates
    Alqahtani, Fahad K.
    Abotaleb, Ibrahim S.
    ElMenshawy, Mohamed
    JOURNAL OF BUILDING ENGINEERING, 2021, 40
  • [36] "Implementation of life cycle analysis on green tea process"(vol 9, 15450, 2023)
    Thiruvengadam, Vimalraj
    Baharuddin, Nurul Huda Binti
    Shiun, Lim Jeng
    HELIYON, 2024, 10 (01)
  • [37] Application Analysis of Life-cycle Green Index of Highway Tunnel Light Environment
    Zhu, He-Hua
    Deng, Yue
    Shen, Yi
    Feng, Shou-Zhong
    Wu, Wei
    Zhongguo Gonglu Xuebao/China Journal of Highway and Transport, 2022, 35 (01): : 13 - 22
  • [38] Green Protective Geopolymer Coatings: Interface Characterization, Modification and Life-Cycle Analysis
    Wang, Aoxuan
    Fang, Yuan
    Zhou, Yingwu
    Wang, Chenman
    Dong, Biqin
    Chen, Cheng
    MATERIALS, 2022, 15 (11)
  • [39] Life cycle energy consumption analysis and green manufacture evolution for the papermaking industry in China
    Man, Yi
    Han, Yulin
    Li, Jigeng
    Hong, Mengna
    Zheng, Wenzhi
    GREEN CHEMISTRY, 2019, 21 (05) : 1011 - 1020
  • [40] Life cycle analysis of ammonia and methane production using green hydrogen and carbon dioxide
    Kadam, Ramdas S.
    Yadav, Ganapati D.
    JOURNAL OF CLEANER PRODUCTION, 2024, 449