Recent Advancements in Electrochemical Deposition of Metal-Based Electrode Materials for Electrochemical Supercapacitors
Santa Islam
Department of Chemistry, Jagannath University, Dhaka, 1100 Bangladesh
Search for more papers by this authorMd. Mithu Mia
Department of Chemistry, Jagannath University, Dhaka, 1100 Bangladesh
Search for more papers by this authorSyed Shaheen Shah
Interdisciplinary Research Center for Hydrogen and Energy Storage (IRC-HES), King Fahd University of Petroleum & Minerals, KFUPM Box 5040, Dhahran, 31261 Saudi Arabia
Physics Department, King Fahd University of Petroleum & Minerals, KFUPM Box 5047, Dhahran, 31261 Saudi Arabia
Search for more papers by this authorShamsun Naher
Department of Chemistry, Jagannath University, Dhaka, 1100 Bangladesh
Search for more papers by this authorM. Nasiruzzaman Shaikh
Interdisciplinary Research Center for Hydrogen and Energy Storage (IRC-HES), King Fahd University of Petroleum & Minerals, KFUPM Box 5040, Dhahran, 31261 Saudi Arabia
Search for more papers by this authorCorresponding Author
Md. Abdul Aziz
- [email protected]
- +966-13-860-3744 | Fax: +966-13-860-7264
Interdisciplinary Research Center for Hydrogen and Energy Storage (IRC-HES), King Fahd University of Petroleum & Minerals, KFUPM Box 5040, Dhahran, 31261 Saudi Arabia
K.A.CARE Energy Research & Innovation Center, King Fahd University of Petroleum & Minerals, Dhahran, 31261 Saudi Arabia
Search for more papers by this authorCorresponding Author
A. J. Saleh Ahammad
- [email protected]
- +880 2 9583794 | Fax: +880 2 7113713
Department of Chemistry, Jagannath University, Dhaka, 1100 Bangladesh
Search for more papers by this authorSanta Islam
Department of Chemistry, Jagannath University, Dhaka, 1100 Bangladesh
Search for more papers by this authorMd. Mithu Mia
Department of Chemistry, Jagannath University, Dhaka, 1100 Bangladesh
Search for more papers by this authorSyed Shaheen Shah
Interdisciplinary Research Center for Hydrogen and Energy Storage (IRC-HES), King Fahd University of Petroleum & Minerals, KFUPM Box 5040, Dhahran, 31261 Saudi Arabia
Physics Department, King Fahd University of Petroleum & Minerals, KFUPM Box 5047, Dhahran, 31261 Saudi Arabia
Search for more papers by this authorShamsun Naher
Department of Chemistry, Jagannath University, Dhaka, 1100 Bangladesh
Search for more papers by this authorM. Nasiruzzaman Shaikh
Interdisciplinary Research Center for Hydrogen and Energy Storage (IRC-HES), King Fahd University of Petroleum & Minerals, KFUPM Box 5040, Dhahran, 31261 Saudi Arabia
Search for more papers by this authorCorresponding Author
Md. Abdul Aziz
- [email protected]
- +966-13-860-3744 | Fax: +966-13-860-7264
Interdisciplinary Research Center for Hydrogen and Energy Storage (IRC-HES), King Fahd University of Petroleum & Minerals, KFUPM Box 5040, Dhahran, 31261 Saudi Arabia
K.A.CARE Energy Research & Innovation Center, King Fahd University of Petroleum & Minerals, Dhahran, 31261 Saudi Arabia
Search for more papers by this authorCorresponding Author
A. J. Saleh Ahammad
- [email protected]
- +880 2 9583794 | Fax: +880 2 7113713
Department of Chemistry, Jagannath University, Dhaka, 1100 Bangladesh
Search for more papers by this authorAbstract
The demand for energy storage devices with high energy and power densities has increased tremendously in this rapidly growing world. Conventional capacitors, fuel cells, and lithium-ion batteries have been used as energy storage devices for the long term. However, supercapacitors are one of the most promising energy storage devices because of their high specific capacitance, high power density, and longer cycle life. Recent research has focused on synthesizing transition-metal oxides/hydroxides, carbon materials, and conducting polymers as supercapacitor electrode materials. The performance of supercapacitors can be improved by altering electrolytes, electrode materials, current collectors, experimental temperatures, and film thickness. Thousands of papers on supercapacitors have already been published, reflecting the significance and elucidating how much demanding such energy storage devices for this fast-growing generation. This review aims to illustrate the electrode materials loaded on various conductive substrates by electrochemical deposition employed for supercapacitors to provide broad knowledge on synthetic pathways, which will pave the way for future research. We also discussed the basic parameters involved in supercapacitor studies and the advantages of the electrochemical deposition techniques through literature analysis. Finally, future trends and directions on exploring metals/metal composites toward designing and constructing viable, high-class, and even newly featured flexible energy storage materials, electrodes, and systems are presented.
References
- 1S. Ishaq, M. Moussa, F. Kanwal, M. Ehsan, M. Saleem, T. N. Van, D. Losic, Sci. Rep. 2019, 9, 5974.
- 2A. R. Shaikh, M. Ashraf, T. AlMayef, M. Chawla, A. Poater, L. Cavallo, Chem. Phys. Lett. 2020, 745, 137239.
- 3M. D. Garba, M. Usman, S. Khan, F. Shehzad, A. Galadima, M. F. Ehsan, A. S. Ghanem, M. Humayun, J. Environ. Chem. Eng. 2021, 9, 104756.
- 4X. Wei, Y. Song, L. Song, X. D. Liu, Y. Li, S. Yao, P. Xiao, Y. Zhang, Small 2021, 17, 2007062.
- 5C. C. Hu, M. J. Liu, K. H. Chang, J. Power Sources 2007, 163, 1126–1131.
- 6M. R. Biradar, A. V. Salkar, P. P. Morajkar, S. V. Bhosale, S. V. Bhosale, New J. Chem. 2021, 45, 9346–9357.
- 7Y. Zhan, H. Zhou, F. Guo, B. Tian, S. Du, Y. Dong, L. Qian, J. Energy Storage 2021, 34, 102180.
- 8J. Liu, K. Huang, H. L. Tang, M. Lei, Int. J. Hydrogen Energy 2016, 41, 996–1001.
- 9A. Jain, M. Ghosh, M. Krajewski, S. Kurungot, M. Michalska, J. Energy Storage 2021, 34, 102178.
- 10Y. Yan, B. Li, W. Guo, H. Pang, H. Xue, J. Power Sources 2016, 329, 148–169.
- 11C. Ma, Q. Fan, M. Dirican, N. Subjalearndee, H. Cheng, J. Li, Y. Song, J. Shi, X. Zhang, Appl. Surf. Sci. 2021, 545, 148933.
- 12D. Huang, L. Chen, L. Yue, F. Yang, H. Guo, W. Yang, J. Alloys Compd. 2021, 867, 158764.
- 13T. Islam, M. M. Hasan, S. S. Shah, M. R. Karim, F. S. Al-Mubaddel, M. H. Zahir, M. A. Dar, M. D. Hossain, M. A. Aziz, A. J. S. Ahammad, J. Energy Storage 2020, 32, 101908.
- 14Y. Liu, Z. Zeng, R. K. Sharma, S. Gbewonyo, K. Allado, L. Zhang, J. Wei, J. Power Sources 2019, 409, 1–5.
- 15N. Wang, G. Han, H. Song, Y. Xiao, Y. Li, Y. Zhang, H. Wang, J. Power Sources 2018, 395, 228–236.
- 16B. Gang, F. Zhang, X. Li, B. Zhai, X. Wang, Y. Song, J. Energy Storage 2021, 33, 102132.
- 17X. Cao, Z. Li, H. Chen, C. Zhang, Y. Zhang, C. Gu, X. Xu, Q. Li, Int. J. Hydrogen Energy 2021, 46, 18887–18897.
- 18J. Fischer, K. Thümmler, S. Fischer, I. G. Gonzalez Martinez, S. Oswald, D. Mikhailova, Energy Fuels 2021, 35, 12653–12665.
- 19Y. Zhao, W. Kang, L. Li, G. Yan, X. Wang, X. Zhuang, B. Cheng, Electrochim. Acta 2016, 207, 257–265.
- 20I. Khan, N. Baig, S. Ali, M. Usman, S. A. Khan, K. Saeed, Energy Storage Mater. 2021, 35, 443–469.
- 21L. Manjakkal, C. G. Núñez, W. Dang, R. Dahiya, Nano Energy 2018, 51, 604–612.
- 22M. Yaseen, M. A. K. Khattak, M. Humayun, M. Usman, S. S. Shah, S. Bibi, B. S. U. Hasnain, S. M. Ahmad, A. Khan, N. Shah, A. A. Tahir, H. Ullah, Energies 2021, 14, 7779.
- 23H. Zhou, S. Wu, H. Wang, Y. Li, X. Liu, Y. Zhou, J. Hazard. Mater. 2021, 402, 124023.
- 24S. S. Shah, S. M. Abu Nayem, N. Sultana, A. J. Saleh Ahammad, M. A. Aziz, ChemSusChem 2022, 15, e202101282.
- 25M. Wayu, Solids 2021, 2, 232–248.
- 26J. H. Lin, Nanoscale Res. Lett. 2018, 13, 215.
- 27C. W. Lien, B. Vedhanarayanan, J. H. Chen, J. Y. Lin, H. H. Tsai, L. D. Shao, T. W. Lin, Chem. Eng. J. 2021, 405, 126706.
- 28C. Zhong, Y. Deng, W. Hu, J. Qiao, L. Zhang, J. Zhang, Chem. Soc. Rev. 2015, 44, 7484–7539.
- 29C. K. Roy, S. S. Shah, A. H. Reaz, S. Sultana, A. N. Chowdhury, S. H. Firoz, M. H. Zahir, M. A. Ahmed Qasem, M. A. Aziz, Chem. Asian J. 2021, 16, 296–308.
- 30A. J. S. Ahammad, N. Odhikari, S. S. Shah, M. M. Hasan, T. Islam, P. R. Pal, M. A. Ahmed Qasem, M. A. Aziz, Nanoscale Adv. 2019, 1, 613–626.
- 31N. C. D. Nath, S. S. Shah, M. A. A. Qasem, M. H. Zahir, M. A. Aziz, ChemistrySelect 2019, 4, 9079–9083.
- 32S. S. Shah, M. A. A. Qasem, R. Berni, C. Del Casino, G. Cai, S. Contal, I. Ahmad, K. S. Siddiqui, E. Gatti, S. Predieri, J. F. Hausman, S. Cambier, G. Guerriero, M. A. Aziz, Sci. Rep. 2021, 11, 6945.
- 33S. S. Shah, E. Cevik, M. A. Aziz, T. F. Qahtan, A. Bozkurt, Z. H. Yamani, Synth. Met. 2021, 277, 116765.
- 34A. Aziz, S. S. Shah, A. Kashem, Chem. Rec. 2020, 20, 1074–1098.
- 35Y. Chang, Y. Sui, J. Qi, L. Jiang, Y. He, F. Wei, Q. Meng, Y. Jin, Electrochim. Acta 2017, 226, 69–78.
- 36X. Zhang, Z. Bu, R. Xu, B. Xie, H. Y. Li, Funct. Mater. Lett. 2017, 10, 1750077.
- 37M. Li, H. He, Vacuum 2017, 143, 371–379.
- 38Q. Lu, L. Liu, S. Yang, J. Liu, Q. Tian, W. Yao, Q. Xue, M. Li, W. Wu, J. Power Sources 2017, 361, 31–38.
- 39T. Wang, K. Li, Q. Le, S. Zhu, X. Guo, D. Jiang, Y. Zhang, J. Colloid Interface Sci. 2021, 594, 812–823.
- 40M. Ashraf, S. S. Shah, I. Khan, M. A. Aziz, N. Ullah, M. Khan, S. F. Adil, Z. Liaqat, M. Usman, W. Tremel, M. N. Tahir, Chem. A Eur. J. 2021, 27, 6973–6984.
- 41H. Liu, B. Xu, M. Jia, M. Zhang, B. Cao, X. Zhao, Y. Wang, Appl. Surf. Sci. 2015, 332, 40–46.
- 42J. Chen, Z. Xia, H. Li, Q. Li, Y. Zhang, Electrochim. Acta 2015, 166, 174–182.
- 43B. Liang, Z. Qin, T. Li, Z. Dou, F. Zeng, Y. Cai, M. Zhu, Z. Zhou, Electrochim. Acta 2015, 177, 335–342.
- 44Y. Yang, W. Yuan, S. Li, X. Yang, J. Xu, Y. Jiang, Electrochim. Acta 2015, 165, 323–329.
- 45L. Wang, X. Feng, L. Ren, Q. Piao, J. Zhong, Y. Wang, H. Li, Y. Chen, B. Wang, J. Am. Chem. Soc. 2015, 137, 4920–4923.
- 46S. S. Shah, M. A. Alfasane, I. A. Bakare, M. A. Aziz, Z. H. Yamani, J. Energy Storage 2020, 30, 101562.
- 47J. Chen, Y. Huang, X. Zhang, X. Chen, C. Li, Ceram. Int. 2015, 41, 12680–12685.
- 48Z. Wang, X. Zhang, Z. Zhang, N. Qiao, Y. Li, Z. Hao, J. Colloid Interface Sci. 2015, 460, 303–309.
- 49Y. Zhu, Z. Wu, M. Jing, X. Yang, W. Song, X. Ji, J. Power Sources 2015, 273, 584–590.
- 50J. Li, M. Wei, W. Chu, N. Wang, Chem. Eng. J. 2017, 316, 277–287.
- 51C. Zhang, A. Xie, W. Zhang, J. Chang, C. Liu, L. Gu, X. Duo, F. Pan, S. Luo, J. Energy Storage 2021, 34, 102181.
- 52G. He, M. Ling, X. Han, D. I. Abou El Amaiem, Y. Shao, Y. Li, W. Li, S. Ji, B. Li, Y. Lu, R. Zou, F. Ryan Wang, D. J. L. Brett, Z. Xiao Guo, C. Blackman, I. P. Parkin, Energy Storage Mater. 2017, 9, 119–125.
- 53M. A. Ehsan, S. S. Shah, S. I. Basha, A. S. Hakeem, M. A. Aziz, Chem. Rec. 2021, DOI 10.1002/tcr.202100278.
- 54G. Manibalan, G. Murugadoss, R. Thangamuthu, P. Ragupathy, R. Mohan Kumar, R. Jayavel, Appl. Surf. Sci. 2018, 456, 104–113.
- 55H. M. Abuzeid, S. A. Elsherif, N. A. AbdelGhany, A. M. Hashem, J. Energy Storage 2019, 21, 156–162.
- 56Z. Zeng, P. Sun, J. Zhu, X. Zhu, RSC Adv. 2015, 5, 17550–17558.
- 57W. Li, J. Xu, Y. Pan, L. An, K. Xu, G. Wang, Z. Yu, L. Yu, J. Hu, Appl. Surf. Sci. 2015, 357, 1747–1752.
- 58S. Selvam, B. Balamuralitharan, S. N. Karthick, K. V. Hemalatha, K. Prabakar, H. J. Kim, Anal. Methods 2016, 8, 7937–7943.
- 59N. Yu, K. Guo, W. Zhang, X. Wang, M. Q. Zhu, J. Mater. Chem. A 2017, 5, 804–813.
- 60S. D. Worrall, H. Mann, A. Rogers, M. A. Bissett, M. P. Attfield, R. A. W. Dryfe, Electrochim. Acta 2016, 197, 228–240.
- 61S. S. Shah, M. A. Aziz, M. Oyama, A. R. F. Al-Betar, Chem. Rec. 2021, 21, 204–238.
- 62M. M. Hasan, T. Islam, A. Imran, B. Alqahtani, S. S. Shah, W. Mahfoz, M. R. Karim, H. F. Alharbi, M. A. Aziz, A. J. S. Ahammad, Electrochim. Acta 2021, 374, 137968.
- 63W. Mahfoz, M. Abdul Aziz, S. S. Shah, A. R. Al-Betar, Chem. Asian J. 2020, 15, 4358–4367.
- 64A. Biswal, P. K. Panda, A. N. Acharya, S. Mohapatra, N. Swain, B. C. Tripathy, Z. T. Jiang, M. Minakshi Sundaram, ACS Omega 2020, 5, 3405–3417.
- 65A. J. S. Ahammad, P. R. Pal, S. S. Shah, T. Islam, M. Mahedi Hasan, M. A. A. Qasem, N. Odhikari, S. Sarker, D. M. Kim, M. Abdul Aziz, J. Electroanal. Chem. 2019, 832, 368–379.
- 66A. Yavuz, P. Yilmaz Erdogan, H. Zengin, Int. J. Energy Res. 2020, 44, 11941–11955.
- 67M. Ue, K. Ida, S. Mori, J. Electrochem. Soc. 1994, 141, 2989–2996.
- 68L. Zhang, X. S. Zhao, Chem. Soc. Rev. 2009, 38, 2520–2531.
- 69A. González, E. Goikolea, J. A. Barrena, R. Mysyk, Renewable Sustainable Energy Rev. 2016, 58, 1189–1206.
- 70R. S. Borges, A. L. M. Reddy, M. T. F. Rodrigues, H. Gullapalli, K. Balakrishnan, G. G. Silva, P. M. Ajayan, Sci. Rep. 2013, 3, 2572.
- 71D. Majumdar, J. Electroanal. Chem. 2021, 880, 114825.
- 72J. P. Zheng, J. Huang, T. R. Jow, J. Electrochem. Soc. 1997, 144, 2026–2031.
- 73M. Usman, M. Humayun, S. S. Shah, H. Ullah, A. A. Tahir, A. Khan, H. Ullah, Energies 2021, 14, 2281.
- 74M. A. Aziz, S. S. Shah, S. M. A. Nayem, M. N. Shaikh, A. S. Hakeem, I. A. Bakare, J. Energy Storage 2022, 50, 104278.
- 75J. H. Lin, Materials (Basel). 2018, 11, 263.
- 76A. K. Mohamedkhair, M. A. Aziz, S. S. Shah, M. N. Shaikh, A. K. Jamil, M. A. A. Qasem, I. A. Buliyaminu, Z. H. Yamani, Arab. J. Chem. 2020, 13, 6161–6173.
- 77S. S. Shah, M. A. Aziz, A. K. Mohamedkhair, M. A. A. Qasem, A. S. Hakeem, M. K. Nazal, Z. H. Yamani, J. Mater. Sci. Mater. Electron. 2019, 30, 16087–16098.
- 78B. E. Conway, V. Birss, J. Wojtowicz, J. Power Sources 1997, 66, 1–14.
- 79C. Romanitan, P. Varasteanu, I. Mihalache, D. Culita, S. Somacescu, R. Pascu, E. Tanasa, S. A. V. Eremia, A. Boldeiu, M. Simion, A. Radoi, M. Kusko, Sci. Rep. 2018, 8, 9654.
- 80K. Wang, B. Zheng, M. Mackinder, N. Baule, E. Garratt, H. Jin, T. Schuelke, Q. H. Fan, J. Energy Storage 2021, 33, 102070.
- 81S. S. Shah, H. T. Das, H. R. Barai, M. A. Aziz, Polymers (Basel). 2022, 14, 270.
- 82Z. Ai, Z. Hu, Y. Liu, M. Fan, P. Liu, New J. Chem. 2016, 40, 340–347.
- 83M. Kim, I. Oh, H. Ju, J. Kim, Phys. Chem. Chem. Phys. 2016, 18, 9124–9132.
- 84W. Peng, H. Li, S. Song, ACS Appl. Mater. Interfaces 2017, 9, 5204–5212.
- 85Y. Li, Z. Luo, H. Qin, S. Liang, L. Chen, H. Wang, C. Zhao, S. Chen, J. Colloid Interface Sci. 2021, 582, 842–851.
- 86P. Samanta, S. Ghosh, N. Chandra Murmu, T. Kuila, Composites Part B 2021, 215, 108755.
- 87H. L. Zhu, Y. Q. Zheng, Electrochim. Acta 2018, 265, 372–378.
- 88S. D. Dhas, P. S. Maldar, M. D. Patil, M. R. Waikar, R. G. Sonkawade, S. K. Chakarvarti, S. K. Shinde, D. Y. Kim, A. V. Moholkar, Mater. Sci. Eng. B 2021, 271, 115298.
- 89A. Leela Mohana Reddy, F. Estaline Amitha, I. Jafri, S. Ramaprabhu, Nanoscale Res. Lett. 2008, 3, 145–151.
- 90P. R. Deshmukh, S. N. Pusawale, V. S. Jamadade, U. M. Patil, C. D. Lokhande, J. Alloys Compd. 2011, 509, 5064–5069.
- 91M. A. Aziz, H. Yang, Chem. Commun. 2008, 826–828.
- 92A. N. Kawde, M. A. Aziz, Electroanalysis 2014, 26, 2484–2490.
- 93S. B. Sadale, S. B. Patil, A. M. Teli, H. Masegi, K. Noda, Solid State Sci. 2022, 123, 106780.
- 94F. Mahdi, M. Javanbakht, S. Shahrokhian, J. Energy Storage 2022, 46, 103802.
- 95M. Vangari, T. Pryor, L. Jiang, J. Energy Eng. 2013, 139, 72–79.
- 96S. Islam, S. S. Shah, S. Naher, M. Ali Ehsan, M. A. Aziz, A. J. S. Ahammad, Chem. Asian J. 2021, 16, 3516–3543.
- 97S. M. Abu Nayem, S. S. Shah, N. Sultana, M. A. Aziz, A. J. Saleh Ahammad, Chem. Rec. 2021, 21, 1039–1072.
- 98S. M. Abu Nayem, S. S. Shah, N. Sultana, M. Abdul Aziz, A. J. Saleh Ahammad, Chem. Rec. 2021, 21, 1073–1097.
- 99S. M. Abu Nayem, S. S. Shah, N. Sultana, M. A. Aziz, A. J. Saleh Ahammad, Chem. Rec. 2021, 21, 1038–1038.
- 100J. Sung, C. Shin, Micromachines 2020, 11, 1125.
- 101D. Yan, Z. Guo, G. Zhu, H. Yang, R. Wei, H. Xu, A. Yu, Mater. Lett. 2012, 82, 156–158.
- 102M. Nakayama, T. Kanaya, R. Inoue, Electrochem. Commun. 2007, 9, 1154–1158.
- 103P. Yang, W. Mai, Nano Energy 2014, 8, 274–290.
- 104B. E. Conway, Electrochem. Supercapacitors 1999, 221–257.
10.1007/978-1-4757-3058-6_10 Google Scholar
- 105S. A. Khan, S. Ali, K. Saeed, M. Usman, I. Khan, J. Mater. Chem. A 2019, 7, 10159–10173.
- 106S. S. Shah, M. N. Shaikh, M. Y. Khan, M. A. Alfasane, M. M. Rahman, M. A. Aziz, Chem. Rec. 2021, 21, 1631–1665.
- 107M. Z. Iqbal, S. Zakar, S. S. Haider, J. Electroanal. Chem. 2020, 858, 113793.
- 108T. Ahmad, M. Mansha, I. W. Kazi, A. Waheed, N. Ullah, J. Water Proc. Eng. 2021, 43, 102304.
- 109T. Ahmad, N. Ullah, Org. Chem. Front. 2021, 8, 1329–1344.
- 110A. Waheed, I. W. Kazi, M. S. Manzar, T. Ahmad, M. Mansha, N. Ullah, N. I. Ahmed Blaisi, Colloids Surf. A 2020, 607, 125472.
- 111M. Mansha, A. Waheed, T. Ahmad, I. W. Kazi, N. Ullah, Environ. Res. 2020, 184, 109337.
- 112S. Khan, Y. A. Khulief, A. A. Al-Shuhail, Int. J. Glob. Warm. 2018, 14, 462–487.
- 113M. Ashraf, I. Khan, M. Usman, A. Khan, S. S. Shah, A. Z. Khan, K. Saeed, M. Yaseen, M. F. Ehsan, M. N. Tahir, N. Ullah, Chem. Res. Toxicol. 2020, 33, 1292–1311.
- 114M. Yamaura, T. Hagiwara, K. Iwata, Synth. Met. 1988, 26, 209–224.
- 115P. E. Lokhande, U. S. Chavan, A. Pandey, Electrochem. Energy Rev. 2020, 3, 155–186.
- 116I. S. El-Hallag, M. N. El-Nahass, S. M. Youssry, R. Kumar, M. M. Abdel-Galeil, A. Matsuda, Electrochim. Acta 2019, 314, 124–134.
- 117I. A. Buliyaminu, M. A. Aziz, S. S. Shah, Z. H. Yamani, J. Mater. Sci. Mater. Electron. 2022, 33, 1337–1351.
- 118M. Dai, D. Zhao, X. Wu, Chin. Chem. Lett. 2020, 31, 2177–2188.
- 119P. Mishra, R. Jain, Int. J. Hydrogen Energy 2016, 41, 22394–22405.
- 120P. Y. Chuang, C. C. Hu, Mater. Chem. Phys. 2005, 92, 138–145.
- 121C. C. Hu, T. W. Tsou, Electrochim. Acta 2002, 47, 3523–3532.
- 122N. Nagarajan, H. Humadi, I. Zhitomirsky, Electrochim. Acta 2006, 51, 3039–3045.
- 123S. S. Shah, K. Hayat, S. Ali, K. Rasool, Y. Iqbal, Mater. Sci. Semicond. Process. 2019, 90, 65–71.
- 124K. Hayat, S. S. Shah, S. Ali, S. K. Shah, Y. Iqbal, M. A. Aziz, J. Mater. Sci. Mater. Electron. 2020, 31, 15859–15874.
- 125K. Hayat, S. S. Shah, M. Yousaf, M. J. Iqbal, M. Ali, S. Ali, M. Ajmal, Y. Iqbal, Mater. Sci. Semicond. Process. 2016, 41, 364–369.
- 126Y. G. Huang, X. H. Zhang, X. B. Chen, H. Q. Wang, J. R. Chen, X. X. Zhong, Q. Y. Li, Int. J. Hydrogen Energy 2015, 40, 14331–14337.
- 127Z. Chen, L. Zheng, T. Zhu, Z. Ma, Y. Yang, C. Wei, L. Liu, X. Gong, Adv. Electron. Mater. 2019, 5, 1800721.
- 128N. Swain, A. Mitra, B. Saravanakumar, S. K. Balasingam, S. Mohanty, S. K. Nayak, A. Ramadoss, Electrochim. Acta 2020, 342, 136041.
- 129X. Dai, M. Zhang, T. Li, X. Cui, Y. Shi, X. Zhu, P. Wangyang, D. Yang, J. Li, Vacuum 2022, 195, 110692.
- 130V. Veeramani, B. Dinesh, S. M. Chen, R. Saraswathi, J. Mater. Chem. A 2016, 4, 3304–3315.
- 131A. Zada, M. Khan, Z. Hussain, M. I. A. Shah, M. Ateeq, M. Ullah, N. Ali, S. Shaheen, H. Yasmeen, S. N. Ali Shah, A. Dang, Zeitschrift für Phys. Chemie 2022, 236, 53–66.
- 132Z. Zhang, L. Ren, W. Han, L. Meng, X. Wei, X. Qi, J. Zhong, Ceram. Int. 2015, 41, 4374–4380.
- 133S. Ding, X. Li, X. Jiang, Q. Hu, Y. Yan, Q. Zheng, D. Lin, Electrochim. Acta 2020, 354, 136711.
- 134Z. Xing, Q. Chu, X. Ren, C. Ge, A. H. Qusti, A. M. Asiri, A. O. Al-Youbi, X. Sun, J. Power Sources 2014, 245, 463–467.
- 135C. Yuan, H. Lin, H. Lu, E. Xing, Y. Zhang, B. Xie, Energy 2015, 93, 1259–1266.
- 136J. Zhang, X. B. Yi, X. C. Wang, J. Ma, S. Liu, X. J. Wang, J. Mater. Sci. Mater. Electron. 2015, 26, 7901–7908.
- 137G. W. Yang, C. L. Xu, H. L. Li, Chem. Commun. 2008, 6537–6539.
- 138M. Aghazadeh, A. Rashidi, M. R. Ganjali, M. G. Maragheh, Int. J. Electrochem. Sci. 2016, 11, 11002–11015.
- 139M. Aghazadeh, J. Mater. Sci. Mater. Electron. 2017, 28, 3108–3117.
- 140S. Shahrokhian, R. Mohammadi, E. Asadian, Int. J. Hydrogen Energy 2016, 41, 17496–17505.
- 141I. A. Dhole, S. T. Navale, Y. H. Navale, Y. M. Jadhav, C. S. Pawar, S. S. Suryavanshi, V. B. Patil, J. Mater. Sci. Mater. Electron. 2017, 28, 10819–10829.
- 142M. Aghazadeh, M. R. Ganjali, J. Mater. Sci. Mater. Electron. 2017, 28, 8144–8154.
- 143Y. Huang, T. Shi, S. Jiang, S. Cheng, X. Tao, Y. Zhong, G. Liao, Z. Tang, Sci. Rep. 2016, 6, 38620.
- 144W. D. Schroeder, C. J. Fontenot, G. L. Schrader, J. Catal. 2001, 203, 382–392.
- 145J. Liu, X. Wang, Q. Peng, Y. Li, Adv. Mater. 2005, 17, 764–767.
- 146Y. Wang, G. Cao, Chem. Mater. 2006, 18, 2787–2804.
- 147J. Livage, Coord. Chem. Rev. 1999, 190–192, 391–403.
- 148P. Asen, S. Shahrokhian, A. Iraji Zad, Int. J. Hydrogen Energy 2017, 42, 21073–21085.
- 149C. H. Lai, C. K. Lin, S. W. Lee, H. Y. Li, J. K. Chang, M. J. Deng, J. Alloys Compd. 2012, 536, S428–S431.
- 150M. H. Bai, L. J. Bian, Y. Song, X. X. Liu, ACS Appl. Mater. Interfaces 2014, 6, 12656–12664.
- 151M. H. Bai, T. Y. Liu, F. Luan, Y. Li, X. X. Liu, J. Mater. Chem. A 2014, 2, 10882–10888.
- 152E. Karaca, K. Pekmez, N. Ö. Pekmez, Electrochim. Acta 2018, 273, 379–391.
- 153Z. Lu, J. Cheng, L. Zhang, Q. Yang, H. Pan, D. Wu, Y. Gao, X. Huang, T. Wang, X. Chen, J. Alloys Compd. 2021, 856, 158075.
- 154V. Srinivasan, J. W. Weidner, J. Power Sources 2002, 108, 15–20.
- 155C. Lin, J. A. Ritter, B. N. Popov, J. Electrochem. Soc. 1998, 145, 4097–4103.
- 156J. B. Wu, Y. Lin, X. H. Xia, J. Y. Xu, Q. Y. Shi, Electrochim. Acta 2011, 56, 7163–7170.
- 157J. K. Lee, G. P. Kim, K. H. Kim, I. K. Song, S. H. Baeck, J. Nanosci. Nanotechnol. 2010, 10, 3676–3679.
- 158Y. F. Yuan, X. H. Xia, J. B. Wu, X. H. Huang, Y. B. Pei, J. L. Yang, S. Y. Guo, Electrochem. Commun. 2011, 13, 1123–1126.
- 159X. H. Xia, J. P. Tu, X. L. Wang, C. D. Gu, X. B. Zhao, Chem. Commun. 2011, 47, 5786–5788.
- 160X. Hu, W. Zhang, X. Liu, Y. Mei, Y. Huang, Chem. Soc. Rev. 2015, 44, 2376–2404.
- 161S. A. Delbari, L. S. Ghadimi, R. Hadi, S. Farhoudian, M. Nedaei, A. Babapoor, A. Sabahi Namini, Q. Van Le, M. Shokouhimehr, M. Shahedi Asl, M. Mohammadi, J. Alloys Compd. 2021, 857, 158281.
- 162K. K. Upadhyay, T. Nguyen, T. M. Silva, M. J. Carmezim, M. F. Montemor, Electrochim. Acta 2017, 225, 19–28.
- 163X. Sun, Q. Li, Y. Lü, Y. Mao, Chem. Commun. 2013, 49, 4456–4458.
- 164D. Cai, B. Liu, D. Wang, L. Wang, Y. Liu, H. Li, Y. Wang, Q. Li, T. Wang, J. Mater. Chem. A 2014, 2, 4954–4960.
- 165L. Mei, T. Yang, C. Xu, M. Zhang, L. Chen, Q. Li, T. Wang, Nano Energy 2013, 3, 36–45.
- 166W. Zeng, L. Wang, H. Shi, G. Zhang, K. Zhang, H. Zhang, F. Gong, T. Wang, H. Duan, J. Mater. Chem. A 2016, 4, 8233–8241.
- 167K. K. Lee, W. S. Chin, C. H. Sow, J. Mater. Chem. A 2014, 2, 17212–17248.
- 168X. Xia, Y. Zhang, D. Chao, C. Guan, Y. Zhang, L. Li, X. Ge, I. M. Bacho, J. Tu, H. J. Fan, Nanoscale 2014, 6, 5008–5048.
- 169L. Hao, L. Shen, J. Wang, Y. Xu, X. Zhang, RSC Adv. 2016, 6, 9950–9957.
- 170Y. Zhang, M. Ma, J. Yang, H. Su, W. Huang, X. Dong, Nanoscale 2014, 6, 4303–4308.
- 171L. Yu, G. Zhang, C. Yuan, X. W. Lou, Chem. Commun. 2013, 49, 137–139.
- 172J. Wu, P. Guo, R. Mi, X. Liu, H. Zhang, J. Mei, H. Liu, W. M. Lau, L. M. Liu, J. Mater. Chem. A 2015, 3, 15331–15338.
- 173W. W. Liu, C. Lu, K. Liang, B. K. Tay, J. Mater. Chem. A 2014, 2, 5100–5107.
- 174X. Dai, M. Zhang, J. Li, D. Yang, RSC Adv. 2020, 10, 15860–15869.
- 175C. Zhang, T. Kuila, N. H. Kim, S. H. Lee, J. H. Lee, Carbon 2015, 89, 328–339.
- 176A. A. Ensafi, N. Ahmadi, B. Rezaei, J. Alloys Compd. 2015, 652, 39–47.
- 177H. Zhang, Y. Dai, H. Zhang, W. Wang, Q. Huang, Y. Chen, L. Pu, Int. J. Electrochem. Sci. 2016, 11, 6279–6286.
- 178X. Guo, X. Li, Z. Xiong, C. Lai, Y. Li, X. Huang, H. Bao, Y. Yin, Y. Zhu, D. Zhang, J. Nanopart. Res. 2016, 18, 144.
- 179C. Xiong, T. Li, A. Dang, T. Zhao, H. Li, H. Lv, J. Power Sources 2016, 306, 602–610.
- 180V. H. Nguyen, C. Lamiel, J. J. Shim, Mater. Lett. 2016, 170, 105–109.
- 181T. Chen, Y. Fan, G. Wang, J. Zhang, H. Chuo, R. Yang, NANO 2016, 11, 1650015.
- 182Y. H. Liu, J. L. Xu, X. Gao, Y. L. Sun, J. J. Lv, S. Shen, L. S. Chen, S. D. Wang, Energy Environ. Sci. 2017, 10, 2534–2543.
- 183B. Yu, G. Jiang, W. Xu, C. Cao, Y. Liu, N. Lei, U. Evariste, P. Ma, J. Alloys Compd. 2019, 799, 415–424.
- 184M. Mirzaee, C. Dehghanian, Mater. Res. Bull. 2019, 109, 10–20.
- 185M. Ates, M. El-Kady, R. B. Kaner, Nanotechnology 2018, 29, 175402.
- 186M. Dai, D. Zhao, H. Liu, X. Zhu, X. Wu, B. Wang, ACS Appl. Energ. Mater. 2021, 4, 2637–2643.
- 187Z. Zeng, B. Xiao, X. Zhu, J. Zhu, D. Xiao, J. Zhu, Ceram. Int. 2017, 43, S633–S638.
- 188P. Asen, S. Shahrokhian, J. Phys. Chem. C 2017, 121, 6508–6519.
- 189F. Chen, Y. Ji, F. Ren, S. Tan, Z. Wang, J. Colloid Interface Sci. 2021, 586, 797–806.
- 190X. Chen, R. Xie, H. Li, F. Jaber, F. Musharavati, E. Zalnezhad, S. Bae, K. S. Hui, K. N. Hui, Sci. Rep. 2020, 10, 18956.
- 191A. K. Singh, D. Sarkar, K. Karmakar, K. Mandal, G. G. Khan, ACS Appl. Mater. Interfaces 2016, 8, 20786–20792.
- 192G. R. Xu, Y. Wen, X. P. Min, W. H. Dong, A. P. Tang, H. S. Song, Electrochim. Acta 2015, 186, 133–141.
- 193W. Ren, D. Guo, M. Zhuo, B. Guan, D. Zhang, Q. Li, RSC Adv. 2015, 5, 21881–21887.
- 194G. Jiang, M. Zhang, X. Li, H. Gao, RSC Adv. 2015, 5, 69365–69370.
- 195K. Xu, R. Zou, W. Li, Q. Liu, X. Liu, L. An, J. Hu, J. Mater. Chem. A 2014, 2, 10090–10097.
- 196W. Liu, C. Lu, X. Wang, K. Liang, B. K. Tay, J. Mater. Chem. A 2015, 3, 624–633.
- 197F. Grote, Z. Y. Yu, J. L. Wang, S. H. Yu, Y. Lei, Small 2015, 11, 4666–4672.
- 198J. Yang, M. Ma, C. Sun, Y. Zhang, W. Huang, X. Dong, J. Mater. Chem. A 2015, 3, 1258–1264.
- 199V. H. Nguyen, C. Lamiel, J. J. Shim, New J. Chem. 2016, 40, 4810–4817.
- 200S. M. Cha, G. Nagaraju, J. S. Yu, J. Phys. Chem. C 2016, 120, 18411–18420.
- 201H. Jiang, C. Li, T. Sun, J. Ma, Chem. Commun. 2012, 48, 2606–2608.
- 202L. Wang, X. Li, T. Guo, X. Yan, B. K. Tay, Int. J. Hydrogen Energy 2014, 39, 7876–7884.
- 203J. H. Yang, C. Wang, D. Yang, X. Li, P. Shang, Y. Li, D. Ma, Mater. Lett. 2014, 128, 380–383.
- 204M. B. J. G. Freitas, J. Power Sources 2001, 93, 163–173.
- 205L. Shen, L. Yu, H. B. Wu, X. Y. Yu, X. Zhang, X. W. Lou, Nat. Commun. 2015, 6, 6694.
- 206J. C. Xing, Y. L. Zhu, Q. W. Zhou, X. D. Zheng, Q. J. Jiao, Electrochim. Acta 2014, 136, 550–556.
- 207K. C. Pham, D. S. McPhail, A. T. S. Wee, D. H. C. Chua, RSC Adv. 2017, 7, 6856–6864.
- 208Y. Li, L. Cao, L. Qiao, M. Zhou, Y. Yang, P. Xiao, Y. Zhang, J. Mater. Chem. A 2014, 2, 6540–6548.
- 209H. Chen, J. Jiang, L. Zhang, D. Xia, Y. Zhao, D. Guo, T. Qi, H. Wan, J. Power Sources 2014, 254, 249–257.
- 210Q. Liu, J. Jin, J. Zhang, ACS Appl. Mater. Interfaces 2013, 5, 5002–5008.
- 211J. Xiao, X. Zeng, W. Chen, F. Xiao, S. Wang, Chem. Commun. 2013, 49, 11734–11736.
- 212L. Yu, L. Zhang, H. B. Wu, X. W. D. Lou, Angew. Chem. 2014, 126, 3785–3788;
10.1002/ange.201400226 Google ScholarAngew. Chem. Int. Ed. 2014, 53, 3711–3714.
- 213J. Ji, L. L. Zhang, H. Ji, Y. Li, X. Zhao, X. Bai, X. Fan, F. Zhang, R. S. Ruoff, ACS Nano 2013, 7, 6237–6243.
- 214Y. Wang, L. Wang, B. Wei, Q. Miao, Y. Yuan, Z. Yang, W. Fei, RSC Adv. 2015, 5, 100106–100113.
- 215A. A. Saleh, A. Amer, D. M. Sayed, N. K. Allam, Electrochim. Acta 2021, 380, 138197.
- 216M. Aghazadeh, M. R. Ganjali, M. G. Maragheh, Int. J. Electrochem. Sci. 2017, 12, 5792–5803.
- 217S. M. Youssry, M. N. El-Nahass, R. Kumar, I. S. El-Hallag, W. K. Tan, A. Matsuda, J. Energy Storage 2020, 30, 101485.
- 218Y. Mao, B. Zhou, S. Peng, J. Mater. Sci. Mater. Electron. 2020, 31, 9457–9467.
- 219A. E. Elkholy, F. El-Taib Heakal, N. K. Allam, Electrochim. Acta 2019, 296, 59–68.
- 220S. M. Youssry, I. S. El-Hallag, R. Kumar, G. Kawamura, A. Matsuda, M. N. El-Nahass, J. Electroanal. Chem. 2020, 857, 113728.
- 221H. Li, Y. Gao, C. Wang, G. Yang, Adv. Energy Mater. 2015, 5, 1401767.
- 222L. Hu, Z. Yu, Z. Hu, Y. Song, F. Zhang, H. Zhu, S. Jiao, Electrochim. Acta 2015, 174, 273–281.
- 223A. Reghu Nath, A. Jayachandran, N. Sandhyarani, Dalton Trans. 2019, 48, 4211–4217.
- 224M. Yang, H. Cheng, Y. Gu, Z. Sun, J. Hu, L. Cao, F. Lv, M. Li, W. Wang, Z. Wang, S. Wu, H. Liu, Z. Lu, Nano Res. 2015, 8, 2744–2754.
- 225H. Zuo, W. Fu, R. Fan, D. Dastan, H. Wang, Z. Shi, Mater. Lett. 2020, 263, 127217.
- 226X. Dai, D. Chen, H. Fan, Y. Zhong, L. Chang, H. Shao, J. Wang, J. Zhang, C. N. Cao, Electrochim. Acta 2015, 154, 128–135.
- 227Y. Li, K. Ye, K. Cheng, J. Yin, D. Cao, G. Wang, J. Power Sources 2015, 274, 943–950.
- 228B. Saravanakumar, S. S. Jayaseelan, M. K. Seo, H. Y. Kim, B. S. Kim, Nanoscale 2017, 9, 18819–18834.
- 229S. Rahimi, S. Shahrokhian, H. Hosseini, J. Electroanal. Chem. 2018, 810, 78–85.
- 230Z. Xu, C. Du, H. Yang, J. Huang, X. Zhang, J. Chen, Chem. Eng. J. 2021, 421, 127871.
- 231V. H. Nguyen, C. Lamiel, J. J. Shim, Electrochim. Acta 2015, 161, 351–357.
- 232Y. Miao, X. Zhang, J. Zhan, Y. Sui, J. Qi, F. Wei, Q. Meng, Y. He, Y. Ren, Z. Zhan, Z. Sun, Adv. Mater. Interfaces 2020, 7, 1901618.