High-efficiency one-step microwave method for high-performance biomass-based hierarchical porous carbon
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Fenghua Zheng | Qingyu Li | Hongqiang Wang | Youguo Huang | Kaibin Chen | Juantao Jiang | Fangping Wang | Ying-tao Luo | Jianjun Liu | Yu-Xiang Jiang | F. Zheng
[1] Wei Guo,et al. Carbon-enabled microwave chemistry: From interaction mechanisms to nanomaterial manufacturing , 2021, Nano Energy.
[2] C. Cao,et al. Rapid and simplistic microwave assisted method to synthesise cobalt selenide nanosheets; a prospective material for high performance hybrid supercapacitor , 2020 .
[3] Jie Deng,et al. Porous Doped Carbons from Anthracite for High-Performance Supercapacitors , 2020, Applied Sciences.
[4] Min Luo,et al. Rapid one-step preparation of hierarchical porous carbon from chitosan-based hydrogel for high-rate supercapacitors: The effect of gelling agent concentration. , 2019, International journal of biological macromolecules.
[5] A. C. Bose,et al. Hierarchical porous structured N-doped activated carbon derived from Helianthus Annuus seed as a cathode material for hybrid supercapacitor device , 2019 .
[6] Min Luo,et al. Rapid single-step synthesis of porous carbon from an agricultural waste for energy storage application. , 2019, Waste management.
[7] T. Vuorinen,et al. Highly Porous Willow Wood-Derived Activated Carbon for High-Performance Supercapacitor Electrodes , 2019, ACS omega.
[8] Gaofeng Shi. Preparation of High Specific Surface Area Activated Carbon from Black Wolfberry Branches as an Efficient Electrode Material for Supercapacitors , 2019, International Journal of Electrochemical Science.
[9] S. Lam,et al. Self‐purging microwave pyrolysis: an innovative approach to convert oil palm shell into carbon‐rich biochar for methylene blue adsorption , 2019, Journal of Chemical Technology & Biotechnology.
[10] Min Luo,et al. Fast one-pot microwave preparation and plasma modification of porous carbon from waste lignin for energy storage application. , 2019, Waste management.
[11] Minarni,et al. The effect of microwave irradiation in activated carbon processing from sago waste to physical and electrochemical properties of electrode supercapacitor cells , 2018, Journal of Physics: Conference Series.
[12] H. Gong,et al. High over-potential nitrogen-doped activated carbon towards hydrogen evolution inhibition in sulfuric acid solution , 2018, Journal of Materials Science: Materials in Electronics.
[13] F. Besenbacher,et al. One-step production of O-N-S co-doped three-dimensional hierarchical porous carbons for high-performance supercapacitors , 2018 .
[14] David Hui,et al. Graphene-based microwave absorbing composites: A review and prospective , 2018 .
[15] Hua-ming Li,et al. Oxygen and nitrogen co-doped porous carbons with finely-layered schistose structure for high-rate-performance supercapacitors , 2017 .
[16] H. Fan,et al. Naturally nitrogen doped porous carbon derived from waste shrimp shells for high-performance lithium ion batteries and supercapacitors , 2017 .
[17] Shuyan Gao,et al. A versatile biomass derived carbon material for oxygen reduction reaction, supercapacitors and oil/water separation , 2017 .
[18] Hua-ming Li,et al. Oxygen and nitrogen co-doped porous carbon nanosheets derived from Perilla frutescens for high volumetric performance supercapacitors , 2017 .
[19] Min Li,et al. Soybean Root-Derived Hierarchical Porous Carbon as Electrode Material for High-Performance Supercapacitors in Ionic Liquids. , 2016, ACS applied materials & interfaces.
[20] Guang-qing Liu,et al. Biochar from microwave pyrolysis of biomass: A review , 2016 .
[21] Z. Liu,et al. Large area synthesis of well-dispersed β-MnO2 nanorods and their electrochemical supercapacitive performances , 2016 .
[22] Bruce Dunn,et al. Efficient storage mechanisms for building better supercapacitors , 2016, Nature Energy.
[23] M. Ahmed,et al. Application of agricultural based activated carbons by microwave and conventional activations for basic dye adsorption: Review , 2016 .
[24] F. N. Ani,et al. Recent development in the production of activated carbon electrodes from agricultural waste biomass for supercapacitors: A review , 2015 .
[25] B. Ahring,et al. Biochar of corn stover: Microwave-assisted pyrolysis condition induced changes in surface functional groups and characteristics , 2015 .
[26] A. B. Fuertes,et al. N-doped microporous carbon microspheres for high volumetric performance supercapacitors , 2015 .
[27] Ning Pan,et al. Supercapacitors Performance Evaluation , 2015 .
[28] Qingyu Li,et al. MnO2 nanosilks self-assembled micropowders: Facile one-step hydrothermal synthesis and their application as supercapacitor electrodes , 2014 .
[29] Q. Xie,et al. Synthesis and oxygen reduction properties of three-dimensional sulfur-doped graphene networks. , 2014, Chemical communications.
[30] Yongyao Xia,et al. Recent Progress in Supercapacitors: From Materials Design to System Construction , 2013, Advanced materials.
[31] You-nian Liu,et al. Electrochemical performance of carbon-coated Li3V2(PO4)3 as a cathode material for asymmetric hybrid capacitors , 2013 .
[32] P. Shen,et al. Simultaneous Formation of Ultrahigh Surface Area and Three‐Dimensional Hierarchical Porous Graphene‐Like Networks for Fast and Highly Stable Supercapacitors , 2013, Advanced materials.
[33] S. Hashmi,et al. Preparation of highly porous binderless activated carbon electrodes from fibres of oil palm empty fruit bunches for application in supercapacitors. , 2013, Bioresource technology.
[34] Shichun Mu,et al. Direct Transformation of Amorphous Silicon Carbide into Graphene under Low Temperature and Ambient Pressure , 2013, Scientific Reports.
[35] Yongyao Xia,et al. Ordered Hierarchical Mesoporous/Microporous Carbon Derived from Mesoporous Titanium‐Carbide/Carbon Composites and its Electrochemical Performance in Supercapacitor , 2011 .
[36] H. Shui,et al. Influence of KOH/Coke Mass Ratio on Properties of Activated Carbons Made by Microwave-Assisted Activation for Electric Double-Layer Capacitors , 2010 .
[37] Morteza Oghbaei,et al. Microwave versus Conventional Sintering: A Review of Fundamentals, Advantages and Applications , 2010 .
[38] Liang Guo,et al. Preparation and characterization of activated carbon from bamboo by microwave-induced phosphoric acid activation , 2010 .
[39] Peng Wang,et al. Modification of bamboo-based activated carbon using microwave radiation and its effects on the adsorption of methylene blue , 2010 .
[40] G. R. Rao,et al. Tuning of Capacitance Behavior of NiO Using Anionic, Cationic, and Nonionic Surfactants by Hydrothermal Synthesis , 2010 .
[41] Lili Zhang,et al. Carbon-based materials as supercapacitor electrodes. , 2009, Chemical Society reviews.
[42] Y. Gogotsi,et al. Materials for electrochemical capacitors. , 2008, Nature materials.
[43] Haiping Yang,et al. Characteristics of hemicellulose, cellulose and lignin pyrolysis , 2007 .
[44] M. Gupta,et al. Microwave synthesis and characterization of metastable (Al/Ti) and hybrid (Al/Ti + SiC) composites , 2007 .
[45] E. Frąckowiak. Carbon materials for supercapacitor application. , 2007, Physical chemistry chemical physics : PCCP.
[46] S. Ismadji,et al. High surface area activated carbon prepared from cassava peel by chemical activation. , 2006, Bioresource technology.
[47] A. Da̧browski,et al. Adsorption of phenolic compounds by activated carbon--a critical review. , 2005, Chemosphere.
[48] Kartic C. Khilar,et al. Pyrolysis characteristics of biomass and biomass components. , 1996 .
[49] Hong Zhang,et al. A novel synthesis of hierarchical porous carbons from interpenetrating polymer networks for high performance supercapacitor electrodes , 2017 .
[50] François Béguin,et al. KOH and NaOH activation mechanisms of multiwalled carbon nanotubes with different structural organisation , 2005 .