Authors
Sudarat Khwanmueang, Woranuch Sudthongkong, Akkawat Ruammaitree, Orapan Saensuk, Poramed Wongjom, Yingyot Infahsaeng, Kunthaya Ratchaphonsaenwong, Pantiwa Petpadoong, Wasan Maiaugree
Published in
ACS omega. Volume 11. Issue 30. Pages 44913-44925. Aug 04, 2026. Epub Jul 21, 2026.
Abstract
Graphite electrodes are widely used in electrochemical and energy-related applications; however, their properties are often limited by the natural origin of graphite, restricting tunability. Herein, we present a simple and scalable route to produce graphite-like carbon from Wolffia globosa biomass with tunable structural and electronic properties. This rapidly growing aquatic plant, abundant in Southeast Asia, was selected due to its high biomass yield, short cultivation period, and intrinsic nitrogen- and oxygen-containing composition, enabling in situ heteroatom self-doping during carbonization. The biomass was carbonized under an argon atmosphere at 900-1300 °C, producing samples denoted as W900-W1300. The effects of carbonization temperature on the structural, chemical, and electronic properties were systematically investigated. FTIR analysis showed progressive removal of oxygen-containing functional groups above 1100 °C, indicating recovery of sp2 carbon domains. Raman spectroscopy revealed a decrease in the ID/IG ratio from 1.320 to 1.000 and an increase in crystallite size from 14.56 to 19.22 nm, confirming enhanced graphitization. XPS results further demonstrated an increase in the sp2/sp3 ratio with increasing temperature. SEM and TEM analyses showed the formation of well-organized nanosheet structures, while BET analysis confirmed enhanced surface area and pore development at higher temperatures. UPS measurements indicated tunable work functions ranging from 2.66 to 4.13 eV. These results demonstrate that Wolffia globosa is a promising renewable precursor for producing graphite-like carbon for energy storage and optoelectronic applications.
PMID:
42568939
Bibliographic data and abstract were imported from PubMed on 08 Aug 2026.
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