Volume 40 Issue 3
Mar.  2023
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XIE Fazhi, ZHANG Daode, YANG Shaohua, et al. Preparation of g-C3N4/Pb composites and application in anode materials for lead carbon batteries[J]. Acta Materiae Compositae Sinica, 2023, 40(3): 1541-1551. doi: 10.13801/j.cnki.fhclxb.20220515.001
Citation: XIE Fazhi, ZHANG Daode, YANG Shaohua, et al. Preparation of g-C3N4/Pb composites and application in anode materials for lead carbon batteries[J]. Acta Materiae Compositae Sinica, 2023, 40(3): 1541-1551. doi: 10.13801/j.cnki.fhclxb.20220515.001

Preparation of g-C3N4/Pb composites and application in anode materials for lead carbon batteries

doi: 10.13801/j.cnki.fhclxb.20220515.001
Funds:  Major Program Natural Science Foundation of the Higher Education Institutions of Anhui Province (KJ2018ZD049); National Science Foundation of China (21777001; 21671003)
  • Received Date: 2022-03-21
  • Accepted Date: 2022-05-01
  • Rev Recd Date: 2022-04-27
  • Available Online: 2022-05-16
  • Publish Date: 2023-03-15
  • To improve the hydrogen precipitation defects and increase the cycle life of lead carbon batteries, layered graphite phase carbon nitride (g-C3N4) was prepared using urea as a precursor and used as an additive to prepare anode plates for lead carbon batteries. The effects of the structure and addition amount of g-C3N4 on the electrochemical performance of lead carbon batteries were investigated with activated carbon (AC) as the control. The results show that the hydrogen evolution reaction (HER) is significantly suppressed by the addition of g-C3N4, and the hydrogen precipitation current of 1wt%g-C3N4 negative plate at −1.5 V is only 6% of that of the activated carbon negative plate. The AC impedance spectra show impedances (Rs) of 0.19868 Ω and 1.749 Ω for 1wt%g-C3N4 and activated carbon anode materials. More importantly, the capacitance of 1wt%g-C3N4 negative electrode plate is 344% higher than that of 1wt%AC negative electrode plate. In the 5000 h high-rate partial-state-of-charge (HRPSoC) battery cycle life test, the addition of g-C3N4 improved the battery life by 62% compared to the addition of activated carbon. After 500 cycles, the battery capacity retention rate is still 70%. g-C3N4 can effectively inhibit the hydrogen precipitation reaction, increase the specific capacitance and thus extend the cycle life of the battery, and at low cost, can be used as a new anode additive to improve the performance of lead carbon batteries.

     

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  • [1]
    FUSINlLO G, ROSESTOLATO D, SCURA F, et al. Lead paste recycling based on conversion into battery grade oxides: Electrochemical tests and industrial production of new batteries[J]. Journal of Power Sources,2018,381:127-135. doi: 10.1016/j.jpowsour.2018.02.019
    [2]
    HU Y, YANG J, HU J, et al. Lead-carbon batteries: Synthesis of nanostructured PbO@C composite derived from spent lead-acid battery for next-generation lead-carbon battery[J]. Advanced Functional Materials,2018,28(9):1870056. doi: 10.1002/adfm.201870056
    [3]
    MOSELEY P T, RAND D A J, DAVIDSON A, et al. Understanding the functions of carbon in the negative active-mass of the lead-acid battery: A review of progress[J]. Journal of Energy Storage,2018,19:272-290. doi: 10.1016/j.est.2018.08.003
    [4]
    HAO H, CHEN K, LIU H, et al. A review of the positive electrode additives in lead-acid batteries[J]. International Journal of Electrochemical Science,2018,13:2329-2340.
    [5]
    WU Y K, TANG K T. Frequency support by BESS–Review and analysis[J]. Energy Procedia,2019,156:187-191. doi: 10.1016/j.egypro.2018.11.126
    [6]
    TIAN X, WU Y, HOU P, et al. Environmental impact and economic assessment of secondary lead production: Comparison of main spent lead-acid battery recycling processes in China[J]. Journal of Cleaner Production,2017,144:142-148. doi: 10.1016/j.jclepro.2016.12.171
    [7]
    TUNDORN P, CHAILAPAKUL O, TANTAVICHET N. Polyaspartate as a gelled electrolyte additive to improve the performance of the gel valve-regulated lead-acid batteries under 100% depth of discharge and partial-state-of charge conditions[J]. Journal of Solid State Electrochemistry,2016,20(3):801-811. doi: 10.1007/s10008-015-3117-z
    [8]
    KAMENEV Y, SHTOMPEL G, OSTAPENKO E, et al. Influence of the active mass particle suspension in electrolyte upon corrosion of negative electrode of a lead-acid battery[J]. Journal of Power Sources,2014,257:181-185. doi: 10.1016/j.jpowsour.2014.01.111
    [9]
    MOSELEY P T, RAND D A J, MONAHOV B. Designing lead-acid batteries to meet energy and power requirements of future automobiles[J]. Journal of Power Sources,2012,219:75-79. doi: 10.1016/j.jpowsour.2012.07.040
    [10]
    RAND D A J, MOSELEY P T. Lead-acid battery fundamentals[M]//Lead-Acid Batteries for Future Automobiles. Amsterdam: Elsevier, 2017: 97-132.
    [11]
    NETHAJI E L, SRINIVAS K, MURTHY K S, et al. Effect of properties of carbon materials on performance of VRLA batteries[J]. Journal of Energy and Power Engineering,2015,9:1029-1035.
    [12]
    HUANG T, OU W, FENG B, et al. Researches on current distribution and plate conductivity of valve-regulated lead-acid batteries[J]. Journal of Power Sources,2012,210:7-14. doi: 10.1016/j.jpowsour.2012.02.086
    [13]
    MOSELEY P T, BONNET B, COOPER A, et al. Lead-acid battery chemistry adapted for hybrid electric vehicle duty[J]. Journal of Power Sources,2007,174(1):49-53. doi: 10.1016/j.jpowsour.2007.06.065
    [14]
    MOSELEY P T, NELSON R F, HOLLENKAMP A F. The role of carbon in valve-regulated lead-acid battery technology[J]. Journal of Power Sources,2006,157(1):3-10. doi: 10.1016/j.jpowsour.2006.02.031
    [15]
    MOSELEY P T. Consequences of including carbon in the negative plates of valve-regulated lead-acid batteries exposed to high-rate partial-state-of-charge operation[J]. Journal of Power Sources,2009,191(1):134-138. doi: 10.1016/j.jpowsour.2008.08.084
    [16]
    MOSELEY P T, RAND D A J, PETERS K. Enhancing the performance of lead-acid batteries with carbon–In pursuit of an understanding[J]. Journal of Power Sources,2015,295:268-274. doi: 10.1016/j.jpowsour.2015.07.009
    [17]
    PAVLOV D, NIKOLOV P, ROGACHEV T. Influence of expander components on the processes at the negative plates of lead-acid cells on high-rate partial-state-of-charge cycling. Part II. Effect of carbon additives on the processes of charge and discharge of negative plates[J]. Journal of Power Sources,2010,195(14):4444-4457. doi: 10.1016/j.jpowsour.2009.12.132
    [18]
    PAVLOV D, NIKOLOV P, ROGACHEV T. Influence of carbons on the structure of the negative active material of lead-acid batteries and on battery performance[J]. Journal of Power Sources,2011,196(11):5155-5167. doi: 10.1016/j.jpowsour.2011.02.014
    [19]
    PAVLOV D, NIKOLOV P. Capacitive carbon and electrochemical lead electrode systems at the negative plates of lead-acid batteries and elementary processes on cycling[J]. Journal of Power Sources,2013,242:380-399. doi: 10.1016/j.jpowsour.2013.05.065
    [20]
    WANG L, ZHANG H, CAO G, et al. Effect of activated carbon surface functional groups on nano-lead electrodepo-sition and hydrogen evolution and its applications in lead-carbon batteries[J]. Electrochimica Acta,2015,186:654-663. doi: 10.1016/j.electacta.2015.11.007
    [21]
    WU Q, CHEN M, WANG S, et al. Preparation of sandwich-like ternary hierarchical nanosheets manganese dioxide/polyaniline/reduced graphene oxide as electrode material for supercapacitor[J]. Chemical Engineering Journal,2016,304:29-38.
    [22]
    TONG P, ZHAO R, ZHANG R, et al. Characterization of lead (Ⅱ)-containing activated carbon and its excellent perfor-mance of extending lead-acid battery cycle life for high-rate partial-state-of-charge operation[J]. Journal of Power Sources,2015,286:91-102. doi: 10.1016/j.jpowsour.2015.03.150
    [23]
    XIE J, HU Y, WU X, et al. Positive effects of highly graphitized porous carbon loaded with PbO on cycle performance of negative plates of lead-acid batteries[J]. Applied Sciences,2021,11(18):8469. doi: 10.3390/app11188469
    [24]
    JIANG Z, WANG T, SONG L, et al. High over-potential nitrogen-doped activated carbon towards hydrogen evolution inhibition in sulfuric acid solution[J]. Journal of Materials Science: Materials in Electronics,2018,29(16):14170-14179. doi: 10.1007/s10854-018-9550-x
    [25]
    WANG F, HU C, LIAN J, et al. Phosphorus-doped activated carbon as a promising additive for high performance lead carbon batteries[J]. RSC Advances,2017,7(7):4174-4178. doi: 10.1039/C6RA26093D
    [26]
    WANG H, LIU Z, LIANG Q, et al. A facile method for preparation of doped-N carbon material based on sisal and application for lead-carbon battery[J]. Journal of Cleaner Production, 2018, 197: 332-338.
    [27]
    BANERJEE A, ZIV B, SHILINA Y, et al. Single-wall carbon nanotube doping in lead-acid batteries: A new horizon[J]. ACS Applied Materials & Interfaces,2017,9(4):3634-3643.
    [28]
    SARAVANAN M, GANESAN M, AMBALAVANAN S. An in situ generated carbon as integrated conductive additive for hierarchical negative plate of lead-acid battery[J]. Journal of Power Sources,2014,251:20-29. doi: 10.1016/j.jpowsour.2013.10.143
    [29]
    XIANG J, DING P, ZHANG H, et al. Beneficial effects of activated carbon additives on the performance of negative lead-acid battery electrode for high-rate partial-state-of-charge operation[J]. Journal of Power Sources,2013,241:150-158. doi: 10.1016/j.jpowsour.2013.04.106
    [30]
    FERNANDEZ M, VALENCIANO J, TRINIDAD F, et al. The use of activated carbon and graphite for the development of lead-acid batteries for hybrid vehicle applications[J]. Journal of Power Sources,2010,195(14):4458-4469. doi: 10.1016/j.jpowsour.2009.12.131
    [31]
    WANG F, HU C, ZHOU M, et al. Research progresses of cathodic hydrogen evolution in advanced lead-acid batteries[J]. Science Bulletin,2016,61(6):451-458. doi: 10.1007/s11434-016-1023-0
    [32]
    YIN J, LIN N, ZHANG W, et al. Highly reversible lead-carbon battery anode with lead grafting on the carbon surface[J]. Journal of Energy Chemistry,2018,27(6):1674-1683. doi: 10.1016/j.jechem.2018.03.002
    [33]
    NAKAMURA K, SHIOMI M, TAKAHASHI K, et al. Failure modes of valve-regulated lead/acid batteries[J]. Journal of Power Sources,1996,59(1-2):153-157. doi: 10.1016/0378-7753(95)02317-8
    [34]
    LAM L T, CEYLAN H, HAIGH N P, et al. Influence of residual elements in lead on oxygen- and hydrogen-gassing rates of lead-acid batteries[J]. Journal of Power Sources, 2010, 195(14): 4494-4512.
    [35]
    PARSONS R. The rate of electrolytic hydrogen evolution and the heat of adsorption of hydrogen[J]. Transactions of the Faraday Society,1958,54:1053-1063. doi: 10.1039/tf9585401053
    [36]
    NORSKOV J K, ROSSMEISL J, LOGADOTTIR A, et al. Origin of the overpotential for oxygen reduction at a fuel-cell cathode[J]. The Journal of Physical Chemistry B,2004,108(46):17886-17892. doi: 10.1021/jp047349j
    [37]
    YANG X, QIAN F, ZOU G, et al. Facile fabrication of acidified g-C3N4/g-C3N4 hybrids with enhanced photocatalysis performance under visible light irradiation[J]. Applied Catalysis B: Environmental,2016,193:22-35. doi: 10.1016/j.apcatb.2016.03.060
    [38]
    杨绍斌, 郭鑫瑶, 董伟, 等. 盐酸活化对石墨相氮化碳(g-C3N4)结构和g-C3N4/S 锂硫电池正极复合材料性能的影响[J]. 复合材料学报, 2019, 36(1):254-260.

    YANG S B, GOU X Y, DONG W, et al. Effect of hydrochloric acid activation on the structure of graphitic phase carbon nitride (g-C3N4) and the performance of g-C3N4/S lithium-sulfur battery cathode composites[J]. Acta Material Compositae Sinica,2019,36(1):254-260(in Chinese).
    [39]
    JIANG G, GENG K, WU Y, et al. High photocatalytic performance of ruthenium complexes sensitizing g-C3N4/TiO2 hybrid in visible light irradiation[J]. Applied Catalysis B: Environmental,2018,227:366-375.
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