Evaluating the Effects of Carbon Physicochemistry on the Rate Capability of Polyaniline and Phytic Acid-Derived Sodium-Ion Battery Anodes

被引:3
作者
Lauro, Samantha N. [1 ]
Burrow, James N. [2 ]
Weeks, Jason A. [1 ]
Mullins, C. Buddie [1 ,2 ,3 ]
机构
[1] Univ Texas Austin, Dept Chem, Austin, TX 78712 USA
[2] Univ Texas Austin, McKetta Dept Chem Engn, Austin, TX 78712 USA
[3] Univ Texas Austin, Texas Mat Inst, Austin, TX 78712 USA
关键词
DOPED CARBON; LITHIUM; ADSORPTION; NANOMATERIALS; STORAGE;
D O I
10.1021/acs.energyfuels.2c01354
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
As inexpensive anodes for sodium-ion batteries (SIBs), hard carbons are a highly tunable class of materials that hold promise to alleviate societal reliance on traditional lithium-based battery chemistries. However, the combination of sodium storage mechanisms, ranging from surface adsorption to pore-filling, has led to convoluted structure-function relationships and debate toward optimal desired material properties. To this end, a suite of nitrogen and phosphorus codoped carbons (NPCs) derived from phytic acid cross-linked polyaniline precursors were systematically evaluated as SIB anodes at practical cycling rates. The addition of calcium or zinc salts to the cross-linked polymerization process before pyrolysis ultimately led to nanoporous hard carbons with varied physicochemical properties and subsequent electrochemical performances. A majority of sodium storage capacity in these polyaniline-derived NPCs occurred in a higher-voltage, sloping region and primarily stemmed from sodium-ion adsorption at defective sites. This storage mechanism was also associated with increased stability compared to lower-voltage mechanisms related to bulk sodium insertion, both in cycle life and rate capability. Best-performing NPCs demonstrated an initial capacity of 212.1 mAh g(-1) with approximately 77% capacity retention over 300 cycles at a cycling rate of similar to 1 C, and high-rate testing revealed a considerable fast charge capacity of 117.8 mAh g(-1) (similar to 8 C, 7.5 min charge time). The superior rate performance and stability of certain NPCs were strongly correlated to the lateral nanocrystalline domain sizes (L-a). Overall, this study outlines a simple and tunable synthetic method for the production of high-performance NPCs for SIBs and sheds light on important considerations for the design of carbon anodes for practical SIBs.
引用
收藏
页码:8449 / 8459
页数:11
相关论文
共 54 条
[1]   How Comparable Are Sodium-Ion Batteries to Lithium-Ion Counterparts? [J].
Abraham, K. M. .
ACS ENERGY LETTERS, 2020, 5 (11) :3544-3547
[2]   Extended plateau capacity of phosphorus-doped hard carbon used as an anode in Na- and K-ion batteries [J].
Alvin, Stevanus ;
Chandra, Christian ;
Kim, Jaehoon .
CHEMICAL ENGINEERING JOURNAL, 2020, 391
[3]   Facile synthesis of hard carbon microspheres from polyphenols for sodium-ion batteries: insight into local structure and interfacial kinetics [J].
Asfaw, H. D. ;
Tai, C. -W. ;
Valvo, M. ;
Younesi, R. .
MATERIALS TODAY ENERGY, 2020, 18 (18)
[4]   CaCl2-Activated Carbon Nitride: Hierarchically Nanoporous Carbons with Ultrahigh Nitrogen Content for Selective CO2 Adsorption [J].
Burrow, James N. ;
Pender, Joshua P. ;
Guerrera, Joseph, V ;
Wygant, Bryan R. ;
Eichler, J. Ehren ;
Calabro, David C. ;
Mullins, C. Buddie .
ACS APPLIED NANO MATERIALS, 2020, 3 (06) :5965-5977
[5]   Morphological and Structural Analysis of Polyaniline and Poly(o-anisidine) Layers Generated in a DC Glow Discharge Plasma by Using an Oblique Angle Electrode Deposition Configuration [J].
Butoi, Bogdan ;
Groza, Andreea ;
Dinca, Paul ;
Balan, Adriana ;
Barna, Valentin .
POLYMERS, 2017, 9 (12)
[6]   Mesoporous soft carbon as an anode material for sodium ion batteries with superior rate and cycling performance [J].
Cao, Bin ;
Liu, Huan ;
Xu, Bin ;
Lei, Yaofei ;
Chen, Xiaohong ;
Song, Huaihe .
JOURNAL OF MATERIALS CHEMISTRY A, 2016, 4 (17) :6472-6478
[7]  
Champagne E. T., 1985, THESIS, P4044
[8]   SEM study of the morphology of high molecular weight polyaniline [J].
Chao, DM ;
Chen, JY ;
Lu, XF ;
Chen, L ;
Zhang, WJ ;
Wei, Y .
SYNTHETIC METALS, 2005, 150 (01) :47-51
[9]   Heteroatom-Doped Carbon Materials: Synthesis, Mechanism, and Application for Sodium-Ion Batteries [J].
Chen, Weimin ;
Wan, Min ;
Liu, Qing ;
Xiong, Xiaoqin ;
Yu, Faquan ;
Huang, Yunhui .
SMALL METHODS, 2019, 3 (04)
[10]   RAMAN MICROPROBE STUDIES ON CARBON MATERIALS [J].
CUESTA, A ;
DHAMELINCOURT, P ;
LAUREYNS, J ;
MARTINEZALONSO, A ;
TASCON, JMD .
CARBON, 1994, 32 (08) :1523-1532