The effect of the pyrolysis temperature and biomass type on the biocarbons characteristics

Author:

Iurchenkova Anna12ORCID,Kobets Anna1ORCID,Ahaliabadeh Zahra1ORCID,Kosir Janez1ORCID,Laakso Ekaterina13,Virtanen Tommi4,Siipola Virpi4ORCID,Lahtinen Jouko5ORCID,Kallio Tanja1ORCID

Affiliation:

1. Research Group of Electrochemical Energy Conversion and Storage Department of Chemistry and Materials Science School of Chemical Engineering Aalto University P.O. Box 16100, FI-00076 Espoo Finland

2. Nanotechnology and Functional Materials Department of Materials Science and Engineering The Ångstrom laboratory Uppsala University BOX 35 75103 Uppsala Sweden

3. LUT University Yliopistonkatu 34 53850 Lappeenranta Finland

4. Bioprocessing of Natural Materials VTT Technical Research Center of Finland Ltd. P.O. Box 1000 Oulu FI- 02044 VTT

5. Department of Applied Physics School of Science Aalto University FI 02150 Espoo Finland

Abstract

AbstractThe conversion of biomass and natural wastes into carbon‐based materials for various applications such as catalysts and energy‐related materials is a fascinating and sustainable approach emerged during recent years. Precursor nature and characteristics are complex, hence, their effect on the properties of resulting materials is still unclear. In this work, we have investigated the effect of different precursors and pyrolysis temperature on the properties of produced carbon materials and their potential application as negative electrode materials in Li‐ion batteries. Three biomasses, lignocellulosic brewery spent grain from a local brewery, catechol‐rich lignin and tannins, were selected for investigations. We show that such end‐product carbon characteristic as functional and elemental composition, porosity, specific surface area, defectiveness level, and morphology strictly depend on the precursor composition, chemical structure, and pyrolysis temperature. The electrochemical characteristics of produced carbon materials correlate with the characteristics of the produced materials. A higher pyrolysis temperature is shown to be favourable for production of carbon material for the Li‐ion battery application in terms of both specific capacity and long‐term cycling stability.

Publisher

Wiley

Subject

General Energy,General Materials Science,General Chemical Engineering,Environmental Chemistry

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