1. b School of Materials Science and Engineering University of Science and Technology of China
2. c Institute of Materials Engineering University of Siegen
3. a Shenyang National Laboratory for Materials Science (SYNL) Institute of Metal Research (IMR) Chinese Academy of Sciences (CAS)
网络首发:2023-12-06,
纸质出版:2023
Scan QR Code
Zhaofeng Zhai, Bin Chen, Chuyan Zhang, 等. Construction of porous diamond film with enhanced electric double-layer capacitance via regrowth of diamond nanoplatelets[J]. Functional Diamond, 2023,3(1).
Zhaofeng Zhai, Bin Chen, Chuyan Zhang, et al. Construction of porous diamond film with enhanced electric double-layer capacitance via regrowth of diamond nanoplatelets[J]. Functional Diamond2023, 3(1).
Zhaofeng Zhai, Bin Chen, Chuyan Zhang, 等. Construction of porous diamond film with enhanced electric double-layer capacitance via regrowth of diamond nanoplatelets[J]. Functional Diamond, 2023,3(1). DOI: 10.1080/26941112.2023.2263468.
Zhaofeng Zhai, Bin Chen, Chuyan Zhang, et al. Construction of porous diamond film with enhanced electric double-layer capacitance via regrowth of diamond nanoplatelets[J]. Functional Diamond2023, 3(1). DOI: 10.1080/26941112.2023.2263468.
Yang N, Yu S, Macpherson JV, et al. Conductive diamond: synthesis, properties, and electrochemical applications. Chem Soc Rev. 2019;48(1):157–204. [PubMed] [Web of Science ®], [Google Scholar]
Cobb SJ, Ayres ZJ, Macpherson JV. Boron doped diamond: a designer electrode material for the twenty-first century. Annual Rev Anal Chem. 2018;11(1):463–484. [PubMed], [Google Scholar]
Yang N, Jiang X. Rational design of diamond electrodes. Acc Chem Res. 2023;56(2):117–127. [PubMed] [Web of Science ®], [Google Scholar]
Zhai ZF, Huang N, Jiang X. Progress in electrochemistry of hybrid diamond/Sp2-C nanostructures. Curr Opin Electrochem. 2022;32:100884. [Web of Science ®], [Google Scholar]
Liu Z, Yuan X, Zhang S, et al. Three-Dimensional ordered porous electrode materials for electrochemical energy storage. NPG Asia Mater. 2019;11(1):12. [Google Scholar]
Lang X-Y, Fu H-Y, Hou C, et al. Nanoporous gold supported cobalt oxide microelectrodes as High-Performance electrochemical biosensors. Nat Commun. 2013;4(1):2169. [PubMed], [Google Scholar]
Ashcheulov P, Hák O, Sedláková S, et al. Multifunctional and mechanically robust porous diamond with large electroactive surfaces via electrically conductive and insulating templates for 3D electrode applications. Adv Materials Inter. 2022;9(15):2200375. [Web of Science ®], [Google Scholar]
Smirnov W, Kriele A, Yang N, et al. Aligned diamond nano-wires: fabrication and characterisation for advanced applications in bio- and electrochemistry. Diamond Relat Mater. 2010;19(2-3):186–189. [Web of Science ®], [Google Scholar]
Honda K, Rao TN, Tryk DA, et al. Electrochemical characterization of the nanoporous honeycomb diamond electrode as an electrical double-layer capacitor. J Electrochem Soc. 2000;147(2):659–664. [Web of Science ®], [Google Scholar]
Ohashi T, Sugimoto W, Takasu Y. Catalytic roughening of surface layers of BDD for various applications. Electrochim Acta. 2009;54(22):5223–5229. [Web of Science ®], [Google Scholar]
Mehedi H-A, Arnault J-C, Eon D, et al. Etching mechanism of diamond by Ni nanoparticles for fabrication of nanopores. Carbon. 2013;59:448–456. [Web of Science ®], [Google Scholar]
Ohashi T, Zhang J, Takasu Y, et al. Steam activation of boron doped diamond electrodes. Electrochim Acta. 2011;56(16):5599–5604. [Web of Science ®], [Google Scholar]
Kondo T, Kodama Y, Ikezoe S, et al. Porous boron-doped diamond electrodes fabricated via two-step thermal treatment. Carbon. 2014;77:783–789. [Web of Science ®], [Google Scholar]
Shi C, Li C, Li M, et al. Fabrication of porous boron-doped diamond electrodes by catalytic etching under hydrogen–argon plasma. Appl Surf Sci. 2016;360:315–322. [Web of Science ®], [Google Scholar]
Zanin H, May PW, Fermin DJ, et al. Porous boron-doped diamond/carbon nanotube electrodes. ACS Appl Mater Interfaces. 2014;6(2):990–995. [PubMed] [Web of Science ®], [Google Scholar]
Kondo T, Yajima K, Kato T, et al. Hierarchically nanostructured boron-doped diamond electrode surface. Diamond Relat Mater. 2017;72:13–19. [Web of Science ®], [Google Scholar]
Hébert C, Scorsone E, Mermoux M, et al. Porous diamond with high electrochemical performance. Carbon. 2015;90:102–109. [Web of Science ®], [Google Scholar]
Gao F, Wolfer MT, Nebel CE. Highly porous diamond foam as a thin-film micro-supercapacitor material. Carbon. 2014;80:833–840. [Web of Science ®], [Google Scholar]
Gao F, Nebel CE. Diamond-based supercapacitors: realization and properties. ACS Appl Mater Interfaces. 2016;8(42):28244–28254. [PubMed] [Web of Science ®], [Google Scholar]
Petrák V, Vlčková Živcová Z, Krýsová H, et al. Fabrication of porous boron-doped diamond on SiO2 fiber templates. Carbon. 2017;114:457–464. [Web of Science ®], [Google Scholar]
Vlčková Živcová Z, Mortet V, Taylor A, et al. Electrochemical characterization of porous boron-doped diamond prepared using SiO2 fiber template. Diamond Relat Mater. 2018;87:61–69. [Web of Science ®], [Google Scholar]
Wang J, He Z, Tan X, et al. High-performance 2.6 v aqueous symmetric supercapacitor based on porous boron-doped diamond via regrowth of diamond nanoparticles. Carbon. 2020;160:71–79. [Web of Science ®], [Google Scholar]
Wang J, He Z, Tan X, et al. Achieving high capacitance from porous boron-doped diamond by tuning the surface termination. Surf Coat Technol. 2021;408:126814. [Web of Science ®], [Google Scholar]
Zhai ZF, Huang N, Yang B, et al. In situ construction of hierarchical diamond supported on carbon nanowalls/diamond for enhanced electron field emission. ACS Appl Mater Interfaces. 2020;12(7):8522–8532. [PubMed] [Web of Science ®], [Google Scholar]
Zhai Z, Leng B, Yang N, et al. Rational construction of 3D-Networked carbon nanowalls/diamond supporting CuO architecture for high-performance electrochemical biosensors. Small. 2019;15(48):1901527. [Web of Science ®], [Google Scholar]
Hiramatsu M, Hori M. In carbon nanowalls: synthesis and emerging applications. Vienna (Austria): Springer, 2010. p. 2–37. [Google Scholar]
Ni ZH, Fan HM, Feng YP, et al. Raman spectroscopic investigation of carbon nanowalls. J Chem Phys. 2006;124:204703. [PubMed] [Web of Science ®], [Google Scholar]
Ferrari AC, Robertson J. Interpretation of Raman spectra of disordered and amorphous carbon. Phys Rev B. 2000;61(20):14095–14107. [Web of Science ®], [Google Scholar]
Pruvost F, Deneuville A. Analysis of the fano in diamond. Diamond Relat Mater. 2001;10(3–7):531–535. [Web of Science ®], [Google Scholar]
Macpherson JV. A practical guide to using boron doped diamond in electrochemical research. Phys Chem Chem Phys. 2015;17(5):2935–2949. [PubMed] [Web of Science ®], [Google Scholar]
Mortet V, Vlčková Živcová Z, Taylor A, et al. Insight into boron-doped diamond Raman spectra characteristic features. Carbon. 2017;115:279–284. [Web of Science ®], [Google Scholar]
Gonon P, Gheeraert E, Deneuville A, et al. Characterization of heavily B-doped polycrystalline diamond films using Raman spectroscopy and electron spin resonance. J Appl Phys. 1995;78(12):7059–7062. [Web of Science ®], [Google Scholar]
Bernard M, Deneuville A, Muret P. Non-destructive determination of the boron concentration of heavily doped metallic diamond thin films from Raman spectroscopy. Diamond Relat Mater. 2004;13(2):282–286. [Web of Science ®], [Google Scholar]
Xu J, Yokota Y, Wong RA, et al. Unusual electrochemical properties of low-doped boron-doped diamond electrodes containing Sp2 carbon. J Am Chem Soc. 2020;142(5):2310–2316. [PubMed] [Web of Science ®], [Google Scholar]
Liu X, Chen X, Singh DJ, et al. Boron-oxygen complex yields N-type surface layer in semiconducting diamond. Proc Natl Acad Sci USA. 2019;116(16):7703–7711. [PubMed] [Web of Science ®], [Google Scholar]
Watanabe T, Yoshioka S, Yamamoto T, et al. The local structure in heavily boron-doped diamond and the effect this has on its electrochemical properties. Carbon. 2018;137:333–342. [Web of Science ®], [Google Scholar]
Wada N, Gaczi PJ, Solin SA. "Diamond-like” 3-fold coordinated amorphous carbon. J Non-Cryst Solids. 1980;35-36:543–548. [Web of Science ®], [Google Scholar]
Zhai ZF, Zhang CY, Xie RW, et al. Two-dimensional diamond formation drivers in chemical vapor deposition: planar defects and graphite. Crystal Growth Des. 2023;23(4):2321–2330. [Web of Science ®], [Google Scholar]
Siuzdak K, Ficek M, Sobaszek M, et al. Boron-enhanced growth of micron-scale carbon-based nanowalls: a route toward high rates of electrochemical biosensing. ACS Appl Mater Interfaces. 2017;9(15):12982–12992. [PubMed] [Web of Science ®], [Google Scholar]
Sobaszek M, Siuzdak K, Ryl J, et al. Diamond phase (sp3-C) rich Boron-Doped carbon nanowalls (sp2-C): physicochemical and electrochemical properties. J Phys Chem C. 2017;121(38):20821–20833. [Web of Science ®], [Google Scholar]
Sharma DK, Girao AV, Chapon P, et al. Advances in RF glow discharge optical emission spectrometry characterization of intrinsic and boron-doped diamond coatings. ACS Appl Mater Interfaces. 2022;14(5):7405–7416. [PubMed] [Web of Science ®], [Google Scholar]
Wang D-W, Li F, Liu M, et al. 3D aperiodic hierarchical porous graphitic carbon material for high-rate electrochemical capacitive energy storage. Angew Chem Int Ed. 2008;47(2):373–376. [PubMed] [Web of Science ®], [Google Scholar]
Lei C, Markoulidis F, Ashitaka Z, et al. Reduction of porous carbon/Al contact resistance for an electric double-layer capacitor (EDLC). Electrochim Acta. 2013;92:183–187. [Web of Science ®], [Google Scholar]
Mei B-A, Munteshari O, Lau J, et al. Physical interpretations of nyquist plots for EDLC electrodes and devices. J Phys Chem C. 2018;122(1):194–206. [Web of Science ®], [Google Scholar]
Keiser H, Beccu KD, Gutjahr MA. Abschätzung Der Porenstruktur Poröser Elektroden Aus Impedanzmessungen. Electrochim Acta. 1976;21(8):539–543. [Google Scholar]
Cooper SJ, Bertei A, Finegan DP, et al. Simulated impedance of diffusion in porous media. Electrochim Acta. 2017;251:681–689. [Web of Science ®], [Google Scholar]
Huang J, Gao Y, Luo J, et al. Editors’ choice—review—impedance response of porous electrodes: theoretical framework, physical models and applications. J Electrochem Soc. 2020;167(16):166503. [Web of Science ®], [Google Scholar]
Zhuang H, Yang N, Fu H, et al. Diamond network: template-free fabrication and properties. ACS Appl Mater Interfaces. 2015;7(9):5384–5390. [PubMed] [Web of Science ®], [Google Scholar]
Lu Z, Huang N, Zhai Z, et al. Integration of 3D interconnected porous microstructure and high electrochemical property for boron-doped diamond by facile strategy. J Mater Sci Technol. 2022;105:26–35. [Web of Science ®], [Google Scholar]
Yang N, Yu S, Zhang W, et al. Electrochemical capacitors with confined redox electrolytes and porous electrodes. Adv Mater. 2022;34(34):2202380. [Web of Science ®], [Google Scholar]
0
浏览量
0
Downloads
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621