Three-dimensional structural Cu6Sn5/carbon nanotubes alloy thin-film electrodes fabricated by in situ electrodeposition from the leaching solution of waste-printed circuit boards

Shuqing Nie , Yu Xin , Qiuyun Wang , Chengjin Liu , Chang Miao , Limin Yu , Wei Xiao

International Journal of Minerals, Metallurgy, and Materials ›› 2023, Vol. 30 ›› Issue (6) : 1171 -1180.

PDF
International Journal of Minerals, Metallurgy, and Materials ›› 2023, Vol. 30 ›› Issue (6) : 1171 -1180. DOI: 10.1007/s12613-022-2591-4
Article

Three-dimensional structural Cu6Sn5/carbon nanotubes alloy thin-film electrodes fabricated by in situ electrodeposition from the leaching solution of waste-printed circuit boards

Author information +
History +
PDF

Abstract

Tin-based materials are very attractive anodes because of their high theoretical capacity, but their rapid capacity fading from volume expansions limits their practical applications during alloying and dealloying processes. Herein, the improved binder-free tin-copper intermetallic/carbon nanotubes (Cu6Sn5/CNTs) alloy thin-film electrodes are directly fabricated through efficient in situ electrodeposition from the leaching solution of treated waste-printed circuit boards (WPCBs). The characterization results show that the easily agglomerated Cu6Sn5 alloy nanoparticles are uniformly dispersed across the three-dimensional network when the CNTs concentration in the electrodeposition solution is maintained at 0.2 g·L−1. Moreover, the optimal Cu6Sn5/CNTs-0.2 alloy thin-film electrode can not only provide a decent discharge specific capacity of 458.35 mAh·g−1 after 50 cycles at 100 mA·g−1 within capacity retention of 82.58% but also deliver a relatively high reversible specific capacity of 518.24, 445.52, 418.18, 345.33, and 278.05 mAh·g−1 at step-increased current density of 0.1, 0.2, 0.5, 1.0, and 2.0 A·g−1, respectively. Therefore, the preparation process of the Cu6Sn5/CNTs-0.2 alloy thin-film electrode with improved electrochemical performance may provide a cost-effective strategy for the resource utilization of WPCBs to fabricate anode materials for lithium-ion batteries.

Keywords

tin-copper intermetallic / in situ electrodeposition / carbon nanotubes / anode material / lithium-ion battery

Cite this article

Download citation ▾
Shuqing Nie, Yu Xin, Qiuyun Wang, Chengjin Liu, Chang Miao, Limin Yu, Wei Xiao. Three-dimensional structural Cu6Sn5/carbon nanotubes alloy thin-film electrodes fabricated by in situ electrodeposition from the leaching solution of waste-printed circuit boards. International Journal of Minerals, Metallurgy, and Materials, 2023, 30(6): 1171-1180 DOI:10.1007/s12613-022-2591-4

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Du QK, Wu QX, Wang HX, et al. Carbon dot-modified silicon nanoparticles for lithium-ion batteries. Int. J. Miner. Metall. Mater., 2021, 28(10): 1603.

[2]

Wang JL, Liu CJ, Wang Q, et al. Investigation of W6+-doped in high-nickel LiNi0.83Co0.11Mn0.06O2 cathode materials for high-performance lithium-ion batteries. J. Colloid Interface Sci., 2022, 628, 338.

[3]

J.L. Wang, C.J. Liu, G.L. Xu, et al., Strengthened the structural stability of in situ F doping Ni-rich LiNi0.8Co0.15Al0.05O2 cathode materials for lithium-ion batteries, Chem. Eng. J., 438(2022), art. No. 135537.

[4]

Y. Xin, H.Y. Mou, C. Miao, et al., Encapsulating Sn—Cu alloy particles into carbon nanofibers as improved performance anodes for lithium-ion batteries, J. Alloys Compd., 922(2022), art. No. 166176.

[5]

H.Y. Mou, Y. Xin, C. Miao, S.Q. Nie, S.X. Chen, and W. Xiao, Amorphous SnO2 nanoparticles embedded into a three-dimensional porous carbon matrix as high-performance anodes for lithium-ion batteries, Electrochim. Acta, 397(2021), art. No. 139286.

[6]

Y. Xu, T. Yuan, Z.H. Bian, J.H. Yang, and S.Y. Zheng, Tuning particle and phase formation of Sn/carbon nanofibers composite towards stable lithium-ion storage, J. Power Sources, 453(2020), art. No. 227467.

[7]

Wang JL, Nie Y, Miao C, Tan Y, Wen MY, Xiao W. Enhanced electrochemical properties of Ni-rich layered cathode materials via Mg2+ and Ti4+ co-doping for lithium-ion batteries. J. Colloid Interface Sci., 2021, 601, 853.

[8]

Xiao W, Nie Y, Miao C, Wang JL, Tan Y, Wen MY. Structural design of high-performance Ni-rich LiNi0.83Co0.11Mn0.06O2 cathode materials enhanced by Mg2+ doping and Li3PO4 coating for lithium ion battery. J. Colloid Interface Sci., 2022, 607, 1071.

[9]

Mou HY, Chen SX, Xiao W, et al. Encapsulating homogenous ultra-fine SnO2/TiO2 particles into carbon nanofibers through electrospinning as high-performance anodes for lithium-ion batteries. Ceram. Int., 2021, 47(14): 19945.

[10]

Xu GL, Gong YD, Miao C, et al. Sn nanoparticles embedded into porous hydrogel-derived pyrolytic carbon as composite anode materials for lithium-ion batteries. Rare Met., 2022, 41(10): 3421.

[11]

Li R, Nie SQ, Miao C, et al. Heterostructural Sn/SnO2 microcube powders coated by a nitrogen-doped carbon layer as good-performance anode materials for lithium ion batteries. J. Colloid Interface Sci., 2022, 606, 1042.

[12]

Jiang WW, Wang W, Liu LS, et al. Sandwich-like Sn/SnO2@Graphene anode composite assembled by fortissimo penetration of γ-ray and interlamellar limitation of graphene oxide. J. Alloys Compd., 2019, 779, 856.

[13]

Gao SW, Wang N, Li S, et al. A multi-wall Sn/SnO2 @Carbon hollow nanofiber anode material for high-rate and long-life lithium-ion batteries. Angew. Chem. Int. Ed., 2020, 59(6): 2465.

[14]

Agubra VA, Zuniga L, Flores D, Campos H, Villarreal J, Alcoutlabi M. A comparative study on the performance of binary SnO2/NiO/C and Sn/C composite nanofibers as alternative anode materials for lithium ion batteries. Electrochim. Acta, 2017, 224, 608.

[15]

Yao NN, Zhang Y, Rao XH, et al. A review on the critical challenges and progress of SiOx-based anodes for lithium-ion batteries. Int. J. Miner. Metall. Mater., 2022, 29(4): 876.

[16]

Yi J, Liu YL, Wang Y, Li XP, Hu SJ, Li WS. Synthesis of dandelion-like TiO2 microspheres as anode materials for lithium ion batteries with enhanced rate capacity and cyclic performances. Int. J. Miner. Metall. Mater., 2012, 19(11): 1058.

[17]

Chen JZ, Yang L, Fang SH, Zhang ZX, Hirano SI. Facile fabrication of graphene/Cu6Sn5 nanocomposite as the high performance anode material for lithium ion batteries. Electrochim. Acta, 2013, 105, 629.

[18]

Xing YL, Wang SB, Fang BZ, Feng YF, Zhang SC. Three-dimensional nanoporous Cu6Sn5/Cu composite from dealloying as anode for lithium ion batteries. Microporous Mesoporous Mater., 2018, 261, 237.

[19]

Xu YH, Liu Q, Zhu YJ, et al. Uniform nano-Sn/C composite anodes for lithium ion batteries. Nano Lett., 2013, 13(2): 470.

[20]

Wang LP, Chen G, Shen QX, Li GM, Guan SY, Li B. Direct electrodeposition of ionic liquid-based template-free SnCo alloy nanowires as an anode for Li-ion batteries. Int. J. Miner. Metall. Mater., 2018, 25(9): 1027.

[21]

Wang Q, Du YY, Lai YQ, Liu FY, Jiang LX, Jia M. Three-dimensional antimony sulfide anode with carbon nanotube interphase modified for lithium-ion batteries. Int. J. Miner. Metall. Mater., 2021, 28(10): 1629.

[22]

Han QG, Yi Z, Cheng Y, Wu YM, Wang LM. Simple preparation of Cu6Sn5/Sn composites as anode materials for lithium-ion batteries. RSC Adv., 2016, 6(19): 15279.

[23]

Hu RZ, Waller GH, Wang YK, et al. Cu6Sn5@SnO2—C nanocomposite with stable core/shell structure as a high reversible anode for Li-ion batteries. Nano Energy, 2015, 18, 232.

[24]

Tan XF, Gu QF, Qu DD, et al. Electrochemically enhanced Cu6Sn5 anodes with tailored crystal orientation and ordered atomic arrangements for lithium-ion battery applications. Acta Mater., 2020, 201, 341.

[25]

Tan XF, Tao SW, Ran LB, Knibbe R, Nogita K. Cobalt-doped Cu6Sn5 lithium-ion battery anodes with enhanced electrochemical properties. Nano Select, 2022, 3(8): 1264.

[26]

Sarakonsri T, Apirattanawan T, Tungprasurt S, Tunkasiri T. Solution route synthesis of dendrite Cu6Sn5 powders, anode material for lithium-ion batteries. J. Mater. Sci., 2006, 41(15): 4749.

[27]

Hu RZ, Zeng MQ, Zhu M. Cyclic durable high-capacity Sn/Cu6Sn5 composite thin film anodes for lithium ion batteries prepared by electron-beam evaporation deposition. Electrochim. Acta, 2009, 54(10): 2843.

[28]

C. Zhang, Z. Wang, Y. Cui, et al., Dealloying-derived nanoporous Cu6Sn5 alloy as stable anode materials for lithium-ion batteries, Materials, 14(2021), No. 15, art. No. 4348.

[29]

Tan XF, McDonald SD, Gu QF, et al. Characterisation of lithium-ion battery anodes fabricated via in situ Cu6Sn5 growth on a copper current collector. J. Power Sources, 2019, 415, 50.

[30]

Chen JZ, Yang L, Fang SH, Hirano SI, Tachibana K. Three-dimensional core—shell Cu@Cu6Sn5 nanowires as the anode material for lithium ion batteries. J. Power Sources, 2012, 199, 341.

[31]

Y.F. Feng, C. Bai, K.D. Wu, et al., Fluorine-doped porous SnO2@C nanosheets as a high performance anode material for lithium ion batteries, J. Alloys Compd., 843(2020), art. No. 156085.

[32]

X.S. Ji, M.D. Yang, A.P. Wan, S.Q. Yu, and Z.T. Yao, Bioleaching of typical electronic waste-printed circuit boards (WPCBs): A short review, Int. J. Environ. Res. Public Health, 19(2022), No. 12, art. No. 7508.

[33]

K.X. Liu, S.Q. Huang, Y.X. Jin, L. Ma, W.X. Wang and J.C. Lam, A green slurry electrolysis to recover valuable metals from waste printed circuit board (WPCB) in recyclable pH-neutral ethylene glycol, J. Hazard. Mater., 433(2022), art. No. 128702.

[34]

L.M. Yu, C. Miao, S.Q. Nie, et al., Feasible preparation of Cu6Sn5 alloy thin-film anode materials for lithium-ion batteries from waste printed circuit boards by electrodeposition, Solid State Ionics, 364(2021), art. No. 115625.

[35]

Wang Y, Wu MH, Jiao Z, Lee JY. Sn@CNT and Sn@C@CNT nanostructures for superior reversible lithium ion storage. Chem. Mater., 2009, 21(14): 3210.

[36]

Lei WX, Pan Y, Zhou YC, Zhou W, Peng ML, Ma ZS. CNTs—Cu composite layer enhanced Sn—Cu alloy as high performance anode materials for lithium-ion batteries. RSC Adv., 2014, 4(7): 3233.

[37]

Cao L, Huang T, Zhang QW, Cui MY, Xu JJ, Xiao RS. Porous Si/Cu anode with high initial coulombic efficiency and volumetric capacity by comprehensive utilization of laser additive manufacturing-chemical dealloying. ACS Appl. Mater. Interfaces, 2020, 12(51): 57071.

[38]

Ni SB, Lv XH, Li T, Yang XL, Zhang LL. Preparation of Cu2O—Cu anode for high performance Li-ion battery via an electrochemical corrosion method. Electrochim. Acta, 2013, 109, 419.

[39]

Baggetto L, Jumas JC, Górka J, Bridges CA, Veith GM. Predictions of particle size and lattice diffusion pathway requirements for sodium-ion anodes using η-Cu6Sn5 thin films as a model system. Phys. Chem. Chem. Phys., 2013, 15(26): 10885.

[40]

Tan XF, Yang WH, Aso K, Matsumura S, McDonald SD, Nogita K. Evidence of copper separation in lithiated Cu6Sn5 lithium-ion battery anodes. ACS Appl. Energy Mater., 2020, 3(1): 141.

[41]

Choi W, Lee JY, Lim HS. Electrochemical lithiation reactions of Cu6Sn5 and their reaction products. Electrochem. Commun., 2004, 6(8): 816.

[42]

Wang ZY, Luo SH, Chen F, et al. Three-dimensional porous carbon nanosheet networks anchored with Cu6Sn5@carbon as a high-performance anode material for lithium ion batteries. RSC Adv., 2016, 6(60): 54718.

[43]

Li JS, Xu XJ, Luo ZS, et al. Co—Sn nanocrystalline solid solutions as anode materials in lithium-ion batteries with high pseudocapacitive contribution. ChemSusChem, 2019, 12(7): 1451.

[44]

Zhang T, Fu LJ, Gao J, Wu YP, Holze R, Wu HQ. Nanosized tin anode prepared by laser-induced vapor deposition for lithium ion battery. J. Power Sources, 2007, 174(2): 770.

[45]

Sun YM, Hu XL, Luo W, Xia FF, Huang YH. Reconstruction of conformal nanoscale MnO on graphene as a high-capacity and long-life anode material for lithium ion batteries. Adv. Funct. Mater., 2013, 23(19): 2436.

[46]

F.C. Zhang, Y. Wang, W.B. Guo, P.Y. Mao, S. Rao, and P.D. Xiao, Yolk-shelled Sn@C@MnO hierarchical hybrid nanospheres for high performance lithium-ion batteries, J. Alloys Compd., 829(2020), art. No. 154579.

AI Summary AI Mindmap
PDF

130

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/