A criterion combined of bulk and surface lithium storage to predict the capacity of porous carbon lithium-ion battery anodes: lithium-ion battery anode capacity prediction

Majid Shaker1, Ali Ghazvini2, Faisal Raza Qureshi3, Reza Riahifar4
1Chongqing 2D Materials Institute, Liangjiang New Area, Chongqing 400714, China
2Department of Materials Science and Engineering, Tarbiat Modares University, Tehran, Iran
3College of Chemical Engineering and Technology, Beijing University of Chemical Technology, Beijing, China
4Department of Nanotechnology and Advanced Materials, Materials and Energy Research Center, Karaj, Iran

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Shaker M, Salahinejad E, Ashtari-Mahini F (2018) Hydrophobization of metallic surfaces by means of Al2O3-HDTMS coatings. Appl Surf Sci 428:455–462

Shaker M, Salahinejad E (2018) A combined criterion of surface free energy and roughness to predict the wettability of non-ideal low-energy surfaces. Prog Org Coat 119:123–126

Ghorbanzadeh M et al (2018) Effect of Al and Zr co-doping on electrochemical performance of cathode Li[Li0.2Ni0.13Co0.13Mn0.54]O2 for Li-ion battery. J Solid State Electrochem 22(4):1155–1163

Jang S et al (2019) Facile synthesis of mesoporous and highly nitrogen/sulfur dual-doped graphene and its ultrahigh discharge capacity in non-aqueous lithium oxygen batteries. Carbon Lett 29(3):297–305

Shaker M, Riahifar R, Li Y (2020) A review on the superb contribution of carbon and graphene quantum dots to electrochemical capacitors’ performance: synthesis and application. Flat Chem 22:100171

Oh YJ et al (2020) Facile preparation of ZnO quantum dots@porous carbon composites through direct carbonization of metal–organic complex for high-performance lithium ion batteries. Carbon Lett 1-7

Azuma H et al (1999) Advanced carbon anode materials for lithium ion cells. J Power Sources 81:1–7

Liu Y et al (1996) Mechanism of lithium insertion in hard carbons prepared by pyrolysis of epoxy resins. Carbon 34(2):193–200

Winter M et al (1998) Insertion electrode materials for rechargeable lithium batteries. Adv Mater 10(10):725–763

Kaskhedikar NA, Maier J (2009) Lithium storage in carbon nanostructures. Adv Mater 21(25–26):2664–2680

Yaghmaee MS, Ahmadian Baghbaderani H (2017) Thermodynamics modeling of cohesive energy of metallic nano-structured materials. Mater Design 114:521–530

Zhang S et al (2020) Measuring the specific surface area of monolayer graphene oxide in water. Mater Lett 261:127098

Balogun M-S et al (2016) All-flexible lithium ion battery based on thermally-etched porous carbon cloth anode and cathode. Nano Energy 26:446–455

Yi J et al (2011) Preparation of hierarchical porous carbon and its rate performance as anode of lithium ion battery. J Power Sources 196(16):6670–6675

Wang L et al (2014) Nitrogen-doped porous carbon/Co3O4 nanocomposites as anode materials for lithium-ion batteries. ACS Appl Mater Interfaces 6(10):7117–7125

Xie Z et al (2016) Hierarchical sandwich-like structure of ultrafine N-rich porous carbon nanospheres grown on graphene sheets as superior lithium-ion battery anodes. ACS Appl Mater Interfaces 8(16):10324–10333

Zheng F, Yang Y, Chen Q (2014) High lithium anodic performance of highly nitrogen-doped porous carbon prepared from a metal-organic framework. Nat Commun 5(1):1–10

Zhang W et al (2015) Facile preparation of 3D hierarchical porous carbon from lignin for the anode material in lithium ion battery with high rate performance. Electrochim Acta 176:1136–1142

Zhu C, Akiyama T (2016) Cotton derived porous carbon via an MgO template method for high performance lithium ion battery anodes. Green Chem 18(7):2106–2114

Ou J et al (2015) Nitrogen-rich porous carbon derived from biomass as a high performance anode material for lithium ion batteries. J Mater Chem A 3(12):6534–6541

Qie L et al (2012) Nitrogen-doped porous carbon nanofiber webs as anodes for lithium ion batteries with a superhigh capacity and rate capability. Adv Mater 24(15):2047–2050

Cui Y et al (2018) All-carbon lithium capacitor based on salt crystal-templated, N-doped porous carbon electrodes with superior energy storage. J Mater Chem A 6(37):18276–18285

Wang W et al (2015) Porous carbon nanofiber webs derived from bacterial cellulose as an anode for high performance lithium ion batteries. Carbon 91:56–65