Modeling the discharge behavior of a lithium-sulfur battery

被引:16
|
作者
Erisen, Nisa [1 ]
Eroglu, Damla [2 ]
机构
[1] Middle East Tech Univ, Dept Chem Engn, Ankara, Turkey
[2] Bogazici Univ, Dept Chem Engn, TR-34342 Istanbul, Turkey
关键词
carbon-to-sulfur ratio; cell design; electrochemical modeling; electrolyte-to-sulfur ratio; lithium-sulfur batteries; HIGH-ENERGY DENSITY; MATHEMATICAL-MODEL; ELECTROCHEMICAL PERFORMANCE; POLYSULFIDE SHUTTLE; KEY PARAMETERS; CELL; ELECTROLYTE; DESIGN; LIQUID; CAPACITY;
D O I
10.1002/er.5701
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In lithium-sulfur (Li-S) batteries, the discharge performance depends greatly on a number of cell design parameters because of the complex reaction mechanisms in the cathode. Electrolyte-to-sulfur (E/S) ratio and carbon-to-sulfur (C/S) ratio in the cell are key examples of these critical design factors that define the Li-S battery performance. Here, a 1-D electrochemical model is reported to calculate the dependence of the discharge behavior of a Li-S battery on the E/S and C/S ratios. Proposed model describes the complex kinetics through two electrochemical and two dissolution/precipitation reactions. Concentration variations in the cathode are also taken into account in the model. Characteristic aspects of the discharge profile of a Li-S battery -the two distinct voltage plateaus and the voltage dip in between- are captured in the predicted voltage curve. Similar trends on the discharge performance of the Li-S cell with varying E/S and C/S ratios are projected; both voltage and discharge capacity of the Li-S battery are improved substantially with increasing C/S or E/S ratio up to a certain point, whereas, the dependence of the discharge performance on these factors is less substantial at higher ratios. This model offers a mechanistic interpretation of the influence of cell design on the Li-S battery performance.
引用
收藏
页码:10599 / 10611
页数:13
相关论文
共 50 条
  • [1] Modeling the volumetric expansion of the lithium-sulfur battery considering charge and discharge profiles
    Brieske, Daniel Martin
    Warnecke, Alexander
    Sauer, Dirk Uwe
    ENERGY STORAGE MATERIALS, 2023, 55 : 289 - 300
  • [2] A Foldable Lithium-Sulfur Battery
    Li, Lu
    Wu, Zi Ping
    Sun, Hao
    Chen, Deming
    Gao, Jian
    Suresh, Shravan
    Chow, Philippe
    Singh, Chandra Veer
    Koratkar, Nikhil
    ACS NANO, 2015, 9 (11) : 11342 - 11350
  • [3] An Advanced Lithium-Sulfur Battery
    Kim, Junghoon
    Lee, Dong-Ju
    Jung, Hun-Gi
    Sun, Yang-Kook
    Hassoun, Jusef
    Scrosati, Bruno
    ADVANCED FUNCTIONAL MATERIALS, 2013, 23 (08) : 1076 - 1080
  • [4] SECONDARY LITHIUM-SULFUR BATTERY
    YAO, NP
    HEREDY, LA
    SAUNDERS, RC
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1970, 117 (08) : C247 - &
  • [5] Modeling the dependence of electrolyte design on lithium-sulfur battery performance
    Firtin, Ayca
    Yuksel, Kagan
    Karaseva, Elena, V
    Kuzmina, Elena, V
    Kolosnitsyn, Vladimir S.
    Eroglu, Damla
    MATERIALS RESEARCH BULLETIN, 2024, 180
  • [6] Formation of Large Polysulfide Complexes during the Lithium-Sulfur Battery Discharge
    Wang, Bin
    Alhassan, Saeed M.
    Pantelides, Sokrates T.
    PHYSICAL REVIEW APPLIED, 2014, 2 (03):
  • [7] MODELING THE DISCHARGE BEHAVIOR OF THE LITHIUM IODINE BATTERY
    SKARSTAD, PM
    SCHMIDT, CL
    JOURNAL OF POWER SOURCES, 1993, 43 (1-3) : 111 - 118
  • [8] Immobilization of sulfur in microgels for lithium-sulfur battery
    Chang, Aiping
    Wu, Qingshi
    Du, Xue
    Chen, Shoumin
    Shen, Jing
    Song, Qiuyi
    Xie, Jianda
    Wu, Weitai
    CHEMICAL COMMUNICATIONS, 2016, 52 (24) : 4525 - 4528
  • [9] Investigation of the Self-Discharge Behavior of Lithium-Sulfur Batteries
    Knap, V.
    Stroe, D-I.
    Swierczynski, M.
    Teodorescu, R.
    Schaltz, E.
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2016, 163 (06) : A911 - A916
  • [10] Multifunctional Lithium-Sulfur Battery Separator
    Yang, Kai
    Zhang, Shengnan
    Han, Dongmei
    Xiao, Min
    Wang, Shuanjin
    Meng, Yuezhong
    PROGRESS IN CHEMISTRY, 2018, 30 (12) : 1942 - 1959