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Laser irradiation of photothermal precursors - a novel approach to produce carbon materials for supercapacitors.
Tammela, Petter; Iurchenkova, Anna; Wang, Zhaohui; Strømme, Maria; Nyholm, Leif; Lindh, Jonas.
Affiliation
  • Tammela P; Department of Material Sciences, Ångström laboratory, Uppsala University, Box 35, SE-751 03, Uppsala, Sweden.
  • Iurchenkova A; Department of Material Sciences, Ångström laboratory, Uppsala University, Box 35, SE-751 03, Uppsala, Sweden.
  • Wang Z; Department of Material Sciences, Ångström laboratory, Uppsala University, Box 35, SE-751 03, Uppsala, Sweden.
  • Strømme M; College of Materials Science and Engineering, Hunan University, 410082, Changsha, Hunan, China.
  • Nyholm L; Department of Material Sciences, Ångström laboratory, Uppsala University, Box 35, SE-751 03, Uppsala, Sweden.
  • Lindh J; Department of Chemistry, Ångström Laboratory, Uppsala University, Box 538, SE-751 21, Uppsala, Sweden.
ChemSusChem ; 17(11): e202301471, 2024 Jun 10.
Article in En | MEDLINE | ID: mdl-38300463
ABSTRACT
A wide array of carbon materials finds extensive utility across various industrial applications today. Nonetheless, the production processes for these materials continue to entail elevated temperatures, necessitate the use of inert atmospheres, and often involve the handling of aggressive and toxic chemicals. The prevalent method for large-scale carbon material production, namely the pyrolysis of waste biomass and polymers, typically unfolds within the temperature range of 500-700 °C under a nitrogen (N2) atmosphere. Unfortunately, this approach suffers from significant energy inefficiency due to substantial heat loss over extended processing durations. In this work, we propose an interesting alternative the carbonization of photothermal nanocellulose/polypyrrole composite films through CO2 laser irradiation in the presence of air. This innovative technique offers a swift and energy-efficient means of preparing carbon materials. The unique interaction between nanocellulose and polypyrrole imparts the film with sufficient stability to retain its structural integrity post-carbonization. This breakthrough opens up new avenues for producing binder-free electrodes using a rapid and straightforward approach. Furthermore, the irradiated film demonstrates specific and areal capacitances of 159 F g-1 and 62 µF cm-2, respectively, when immersed in a 2 M NaOH electrolyte. These values significantly surpass those achieved by current commercial activated carbons. Together, these attributes render CO2-laser carbonization an environmentally sustainable and ecologically friendly method for carbon material production.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: ChemSusChem Journal subject: QUIMICA / TOXICOLOGIA Year: 2024 Document type: Article Affiliation country: Sweden

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: ChemSusChem Journal subject: QUIMICA / TOXICOLOGIA Year: 2024 Document type: Article Affiliation country: Sweden