TY - JOUR
T1 - Ordered Mesoporous Boron Carbon Nitrides with Tunable Mesopore Nanoarchitectonics for Energy Storage and CO2 Adsorption Properties
AU - Sathish, C. I.
AU - Kothandam, Gopalakrishnan
AU - Selvarajan, Premkumar
AU - Lei, Zhihao
AU - Lee, Jangmee
AU - Qu, Jiangtao
AU - Al-Muhtaseb, Ala'a H.
AU - Yu, Xiaojiang
AU - Breese, Mark B.H.
AU - Zheng, Rongkun
AU - Yi, Jiabao
AU - Vinu, Ajayan
N1 - Funding Information:
A.V. would like to acknowledge the Australian Research Council (ARC) for Future Fellowship award (FT100100970) and the start‐up grant from the University of Newcastle. The authors would like to acknowledge the Singapore Synchrotron Light Source (SSLS) for providing the facility necessary for conducting the research. The laboratory is supported by the National Research Infrastructure grant from the National Research Foundation Singapore. J.Y. acknowledges the ARC Future Fellowship support (Grant No. FT160100205).
Publisher Copyright:
© 2022 The Authors. Advanced Science published by Wiley-VCH GmbH.
PY - 2022/6/3
Y1 - 2022/6/3
N2 - Porous boron carbon nitride (BCN) is one of the exciting systems with unique electrochemical and adsorption properties. However, the synthesis of low-cost and porous BCN with tunable porosity is challenging, limiting its full potential in a variety of applications. Herein, the preparation of well-defined mesoporous boron carbon nitride (MBCN) with high specific surface area, tunable pores, and nitrogen contents is demonstrated through a simple integration of chemical polymerization of readily available sucrose and borane ammonia complex (BAC) through the nano-hard-templating approach. The bimodal pores are introduced in MBCN by controlling the self-organization of BAC and sucrose molecules within the nanochannels of the template. It is found that the optimized sample shows a high specific capacitance (296 F g−1 at 0.5 A g−1), large specific capacity for sodium-ion battery (349 mAg h−1 at 50 mAh g−1), and excellent CO2 adsorption capacity (27.14 mmol g−1 at 30 bar). Density functional theory calculations demonstrate that different adsorption sites (B-C, B-N, C-N, and C-C) and the large specific surface area strongly support the high adsorption capacity. This finding offers an innovative breakthrough in the design and development of MBCN nanostructures for energy storage and carbon capture applications.
AB - Porous boron carbon nitride (BCN) is one of the exciting systems with unique electrochemical and adsorption properties. However, the synthesis of low-cost and porous BCN with tunable porosity is challenging, limiting its full potential in a variety of applications. Herein, the preparation of well-defined mesoporous boron carbon nitride (MBCN) with high specific surface area, tunable pores, and nitrogen contents is demonstrated through a simple integration of chemical polymerization of readily available sucrose and borane ammonia complex (BAC) through the nano-hard-templating approach. The bimodal pores are introduced in MBCN by controlling the self-organization of BAC and sucrose molecules within the nanochannels of the template. It is found that the optimized sample shows a high specific capacitance (296 F g−1 at 0.5 A g−1), large specific capacity for sodium-ion battery (349 mAg h−1 at 50 mAh g−1), and excellent CO2 adsorption capacity (27.14 mmol g−1 at 30 bar). Density functional theory calculations demonstrate that different adsorption sites (B-C, B-N, C-N, and C-C) and the large specific surface area strongly support the high adsorption capacity. This finding offers an innovative breakthrough in the design and development of MBCN nanostructures for energy storage and carbon capture applications.
KW - CO capture
KW - mesoporous
KW - sodium-ion battery
KW - specific capacitance
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U2 - 10.1002/advs.202105603
DO - 10.1002/advs.202105603
M3 - Article
C2 - 35384377
AN - SCOPUS:85127389305
SN - 2198-3844
VL - 9
JO - Advanced Science
JF - Advanced Science
IS - 16
M1 - 2105603
ER -