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High Carbon Containing Biomaterial Offering Honeycomb Morphology As A Charge Storing Electrode In Aqueous Alkaline Electrolytes

Publication Type : Journal Article

Publisher : Elsevier BV

Source : Journal of Electroanalytical Chemistry

Url : https://doi.org/10.1016/j.jelechem.2024.118423

Keywords : Materials sustainability, Carbon negative precursors, Electrochemical double layer capacitors (EDLC), Bioresources, Supercapacitors

Campus : Amritapuri

School : School of Physical Sciences

Department : Physics

Year : 2024

Abstract : Research on unconventional carbon structures and morphologies obtainable from renewable sources are a way forward in realizing sustainable materials for the next-generation industry. Herein, renewable porous carbon from a biomass (coconut rachis) with high carbon content (∼81 %) and honeycomb morphology (inner diameter ∼60 μm and wall thickness ∼500 nm) is developed as an electrochemical capacitor electrode. The coconut rachis upon chemical activation yield a surface area ∼1,630 m2‧g−1 and desirable pore characteristics for storing aqueous cations. The electrochemical charge storability of the porous carbon electrodes in 1 M KOH, NaOH and LiOH electrolytes showed specific capacitances ∼320, ∼140 and ∼102 F‧g−1, respectively. Electrochemical impedance spectra validated the higher capacitance in the KOH electrolyte. Besides, symmetric supercapacitor full cells were fabricated using the present electrode in 1 M KOH electrolyte with desirable charge storage properties. Given the abundance of the precursor and desirable charge storage characteristics, the present work could be useful in developing the coconut rachis-resourced honeycomb-shaped porous carbon as a charge storing electrode.

Cite this Research Publication : Devu Bindhu, Chandrasekharannair Omanaamma Sreekala, Nurulhuda Binti Mohamed Shah, JinKiong Ling, Izan Izwan Misnon, Chun-Chen Yang, Rajan Jose, High carbon containing biomaterial offering honeycomb morphology as a charge storing electrode in aqueous alkaline electrolytes, Journal of Electroanalytical Chemistry, Elsevier BV, 2024, https://doi.org/10.1016/j.jelechem.2024.118423

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