Averrhoa bilimbi leaves-derived oxygen doped 3D-linked hierarchical porous carbon as high-quality electrode material for symmetric supercapacitor
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[1] Junqing Pan,et al. Accurately control the micropore/mesopore ratio to construct a new hierarchical porous carbon with ultrahigh capacitance and rate performance , 2022, Journal of Power Sources.
[2] Junqing Pan,et al. Recent progress on porous carbon and its derivatives from plants as advanced electrode materials for supercapacitors , 2022, Journal of Power Sources.
[3] C. Lee,et al. Creating ultrahigh surface area functional carbon from biomass for high performance supercapacitor and facile removal of emerging pollutants , 2022 .
[4] S. Bashir,et al. Symmetric supercapacitors composed of ternary metal oxides (NiO/V2O5/MnO2) nanoribbon electrodes with high energy storage performance , 2021 .
[5] E. Taer,et al. Ultra‐High Capacitive Supercapacitor Derived from Self‐Oxygen Doped Biomass‐Based 3D Porous Carbon Sources , 2021, ChemNanoMat.
[6] E. Taer,et al. High Potential of Averrhoa bilimbi Leaf Waste as Porous Activated Carbon Source for Sustainable Electrode Material Supercapacitor , 2021, Journal of Physics: Conference Series.
[7] E. Taer,et al. Porous hollow biomass‐based carbon nanofiber/nanosheet for high‐performance supercapacitor , 2021, International Journal of Energy Research.
[8] K. Zhuo,et al. Honeysuckle flowers-derived hierarchical porous carbon matching with ionic liquid electrolyte for high-energy supercapacitors , 2021 .
[9] Wei Sun,et al. Rationally tuning ratio of micro- to meso-pores of biomass-derived ultrathin carbon sheets toward supercapacitors with high energy and high power density. , 2021, Journal of colloid and interface science.
[10] E. Taer,et al. A facile approach of micro-mesopores structure binder-free coin/monolith solid design activated carbon for electrode supercapacitor , 2021, Journal of Energy Storage.
[11] Wen Lu,et al. A review on selection criteria of aqueous electrolytes performance evaluation for advanced asymmetric supercapacitors , 2021 .
[12] L. Luo,et al. High performance supercapacitor electrodes based on B/N Co-doped biomass porous carbon materials by KOH activation and hydrothermal treatment , 2021 .
[13] P. Chand,et al. Biomass derived carbon for supercapacitor applications: Review , 2021, Journal of Energy Storage.
[14] D. Tian,et al. Trichoderma bridges waste biomass and ultra-high specific surface area carbon to achieve a high-performance supercapacitor , 2021 .
[15] M. Shaker,et al. Biomass-derived porous carbons as supercapacitor electrodes – A review , 2021, New Carbon Materials.
[16] Xiangping Li,et al. A critical review on the application and recent developments of post-modified biochar in supercapacitors , 2021 .
[17] Shao Ing Wong,et al. Watermelon Peel‐Derived Heteroatom‐Doped Hierarchical Porous Carbon as a High‐Performance Electrode Material for Supercapacitors , 2021, ChemElectroChem.
[18] Junqing Pan,et al. A green and economical approach to derive biomass porous carbon from freely available feather finger grass flower for advanced symmetric supercapacitors , 2021 .
[19] Minghua Chen,et al. Oxygen-rich hierarchical porous carbon derived from biomass waste-kapok flower for supercapacitor electrode , 2021 .
[20] M. Krajewski,et al. Biomass-derived activated carbon material from native European deciduous trees as an inexpensive and sustainable energy material for supercapacitor application , 2021 .
[21] Hui Peng,et al. Formation of nitrogen-doped holey carbon nanosheets via self-generated template assisted carbonization of polyimide nanoflowers for supercapacitor , 2021 .
[22] M. Jayachandran,et al. Effect of various aqueous electrolytes on the electrochemical performance of α-MnO2 nanorods as electrode materials for supercapacitor application , 2021 .
[23] Wei Zhang,et al. Chitin nanofibers as versatile bio-templates of zeolitic imidazolate frameworks for N-doped hierarchically porous carbon electrodes for supercapacitor. , 2021, Carbohydrate polymers.
[24] Xiaodu Liang,et al. Biomass waste derived functionalized hierarchical porous carbon with high gravimetric and volumetric capacitances for supercapacitors , 2021 .
[25] Yongfu Zhu,et al. Potassium-ion batteries with novel N, O enriched corn silk-derived carbon as anode exhibiting excellent rate performance , 2021 .
[26] Gunes A. Yakaboylu,et al. Engineered hierarchical porous carbons for supercapacitor applications through chemical pretreatment and activation of biomass precursors , 2021 .
[27] A. Gopalakrishnan,et al. Effect of self-doped heteroatoms on the performance of biomass-derived carbon for supercapacitor applications , 2020 .
[28] Mahaveer D. Kurkuri,et al. Low cost, catalyst free, high performance supercapacitors based on porous nano carbon derived from agriculture waste , 2020 .
[29] Syed Shaheen Shah,et al. Preparation of Hierarchical Porous Activated Carbon from Banana Leaves for High-performance Supercapacitor: Effect of Type of Electrolytes on Performance. , 2020, Chemistry, an Asian journal.
[30] W. Xing,et al. Heteroatom-doped hierarchical porous carbon via molten-salt method for supercapacitors , 2020 .
[31] E. Taer,et al. Conversion Syzygium oleana leaves biomass waste to porous activated carbon nanosheet for boosting supercapacitor performances , 2020 .
[32] A. Gopalakrishnan,et al. Green synthesis of nitrogen, sulfur-co-doped worm-like hierarchical porous carbon derived from ginger for outstanding supercapacitor performance , 2020 .
[33] Dongfang Guo,et al. Recent advances and challenges in biomass-derived porous carbon nanomaterials for supercapacitors , 2020, Chemical Engineering Journal.
[34] E. Taer,et al. A rod‐like mesoporous carbon derived from agro‐industrial cassava petiole waste for supercapacitor application , 2020 .
[35] Qian Yang,et al. Core-shell motif construction: Highly graphitic nitrogen-doped porous carbon electrocatalysts using MOF-derived carbon@COF heterostructures as sacrificial templates , 2020 .
[36] E. Taer,et al. Three-dimensional pore structure of activated carbon monolithic derived from hierarchically bamboo stem for supercapacitor application , 2020 .
[37] Jingli Shi,et al. Preparation of novel 3D hierarchical porous carbon membrane as flexible free-standing electrode for supercapacitors , 2020 .
[38] Junqing Pan,et al. Hierarchical porous carbon derived from jujube fruits as sustainable and ultrahigh capacitance material for advanced supercapacitors. , 2020, Journal of colloid and interface science.
[39] F. Trejo,et al. Activated Carbon by Potassium Carbonate Activation from Pine Sawdust ( Pinus montezumae Lamb.) , 2020 .
[40] E. Taer,et al. The synthesis of activated carbon nanofiber electrode made from acacia leaves (Acacia mangium wild) as supercapacitors , 2020, Advances in Natural Sciences: Nanoscience and Nanotechnology.
[41] Jarrn-Horng Lin,et al. Large‐Scale Synthesis of Nitrogen‐Doped Activated Carbon Fibers with High Specific Surface Area for High‐Performance Supercapacitors , 2020 .
[42] Dongxuan Guo,et al. A novel dual-tasking hollow cube NiFe2O4-NiCo-LDH@rGO hierarchical material for high preformance supercapacitor and glucose sensor. , 2020, Journal of colloid and interface science.
[43] F. Ghamouss,et al. Efficient CO 2 Capture by Ultra‐high Microporous Activated Carbon Made from Natural Coal , 2020 .
[44] Poramane Chiochan,et al. High-rate aqueous/ionic liquid dual electrolyte supercapacitor using 3D graphene sponge with an ultrahigh pore volume , 2019 .
[45] R. Srinivasan,et al. Low cost activated carbon derived from Cucumis melo fruit peel for electrochemical supercapacitor application , 2019, Applied Surface Science.
[46] V. Thangadurai,et al. Electrolyte selection for supercapacitive devices: a critical review , 2019, Nanoscale advances.
[47] J. Dennis,et al. A review of technical advances of recent palm bio-waste conversion to activated carbon for energy storage , 2019, Journal of Cleaner Production.
[48] Weiqing Yang,et al. Nitrogen, oxygen and sulfur co-doped hierarchical porous carbons toward high-performance supercapacitors by direct pyrolysis of kraft lignin , 2019, Carbon.
[49] Wenli Zhang,et al. Effect of removing silica in rice husk for the preparation of activated carbon for supercapacitor applications , 2019, Chinese Chemical Letters.
[50] T. Qiu,et al. The preparation of synthetic graphite materials with hierarchical pores from lignite by one-step impregnation and their characterization as dye absorbents , 2019, RSC advances.
[51] Xiao-Qiang Lin,et al. Self‐Nitrogen‐Doped Porous Biocarbon from Watermelon Rind: A High‐Performance Supercapacitor Electrode and Its Improved Electrochemical Performance Using Redox Additive Electrolyte , 2019, Energy Technology.
[52] P. Chu,et al. Biomass-derived robust three-dimensional porous carbon for high volumetric performance supercapacitors , 2019, Journal of Power Sources.
[53] H. Ren,et al. Sakura-based activated carbon preparation and its performance in supercapacitor applications , 2019, RSC advances.
[54] Zhiping Zhou,et al. NaCl-template assisted preparation of porous carbon nanosheets started from lignin for efficient removal of tetracycline , 2019, Advanced Powder Technology.
[55] F. Tezel,et al. Materials for energy storage: Review of electrode materials and methods of increasing capacitance for supercapacitors , 2018, Journal of Energy Storage.
[56] X. Qiu,et al. Renewable lignin-based carbon with a remarkable electrochemical performance from potassium compound activation , 2018, Industrial Crops and Products.
[57] J. Foroughi,et al. Superelastic Hybrid CNT/Graphene Fibers for Wearable Energy Storage , 2018 .
[58] E. Taer,et al. Brief review: Preparation techniques of biomass based activated carbon monolith electrode for supercapacitor applications , 2018 .
[59] Awitdrus,et al. The effect of CO2 activation temperature on the physical and electrochemical properties of activated carbon monolith from banana stem waste , 2018 .
[60] M. Purkait,et al. A novel adsorbent from carrot, tomato and polyethylene terephthalate waste as a potential adsorbent for Co (II) from aqueous solution: Kinetic and equilibrium studies , 2018 .
[61] P. González-García. Activated carbon from lignocellulosics precursors: A review of the synthesis methods, characterization techniques and applications , 2018 .
[62] Kuihua Han,et al. Synthesis of garlic skin-derived 3D hierarchical porous carbon for high-performance supercapacitors. , 2018, Nanoscale.
[63] N. Chanlek,et al. Interconnected open-channel carbon nanosheets derived from pineapple leaf fiber as a sustainable active material for supercapacitors , 2017 .
[64] G. Lei,et al. Oxygen-containing hierarchically porous carbon materials derived from wild jujube pit for high-performance supercapacitor , 2017 .
[65] F. J. Maldonado-Hódar,et al. Activated carbons from KOH and H3PO4-activation of olive residues and its application as supercapacitor electrodes , 2017 .
[66] Yafei Zhang,et al. Three-dimensional structures of graphene/polyaniline hybrid films constructed by steamed water for high-performance supercapacitors , 2017 .
[67] B. He,et al. Highly microporous carbons derived from a complex of glutamic acid and zinc chloride for use in supercapacitors , 2016 .
[68] Eider Goikolea,et al. Review on supercapacitors: Technologies and materials , 2016 .
[69] F. N. Ani,et al. Recent development in the production of activated carbon electrodes from agricultural waste biomass for supercapacitors: A review , 2015 .
[70] Awitdrus,et al. A New Empirical Equation for Estimating Specific Surface Area of Supercapacitor Carbon Electrode from X-Ray Diffraction , 2015 .
[71] Cuimei Zhao,et al. A Review for Aqueous Electrochemical Supercapacitors , 2015, Front. Energy Res..
[72] Meng Li,et al. Effects of steam activation on the pore structure and surface chemistry of activated carbon derived from bamboo waste , 2014 .
[73] H. C. Siong,et al. Preparation of Hierarchical Porous Carbon Derived from Averrhoa Bilimbi and Its Diffusion Properties , 2014 .
[74] J. Amarilla,et al. Amorphous Carbon Nanofibers and Their Activated Carbon Nanofibers as Supercapacitor Electrodes , 2010 .