Abstract
The growing adoption of biobased materials for electronic, energy conversion, and storage devices has relied on high-grade or refined cellulosic compositions. Herein, lignocellulose nanofibrils (LCNF), obtained from simple mechanical fibrillation of wood, are proposed as a source of continuous carbon microfibers obtained by wet spinning followed by single-step carbonization at 900 °C. The high lignin content of LCNF (∼28% based on dry mass), similar to that of the original wood, allowed the synthesis of carbon microfibers with a high carbon yield (29%) and electrical conductivity (66 S cm-1). The incorporation of anionic cellulose nanofibrils (TOCNF) enhanced the spinnability and the porous morphology of the carbon microfibers, making them suitable platforms for electrochemical double layer capacitance (EDLC). The increased loading of LCNF in the spinning dope resulted in carbon microfibers of enhanced carbon yield and conductivity. Meanwhile, TOCNF influenced the pore evolution and specific surface area after carbonization, which significantly improved the electrochemical double layer capacitance. When the carbon microfibers were directly applied as fiber-shaped supercapacitors (25 F cm-3), they displayed a remarkably long-term electrochemical stability (>93% of the initial capacitance after 10 000 cycles). Solid-state symmetric fiber supercapacitors were assembled using a PVA/H2SO4 gel electrolyte and resulted in an energy and power density of 0.25 mW h cm-3 and 65.1 mW cm-3, respectively. Overall, the results indicate a green and facile route to convert wood into carbon microfibers suitable for integration in wearables and energy storage devices and for potential applications in the field of bioelectronics.
| Original language | English |
|---|---|
| Pages (from-to) | 8549-8561 |
| Number of pages | 13 |
| Journal | ACS Sustainable Chemistry & Engineering |
| Volume | 8 |
| Issue number | 23 |
| DOIs | |
| Publication status | Published - 15 Jun 2020 |
| MoE publication type | A1 Journal article-refereed |
Funding
This work was partially funded by Business Finland through the strategic opening Design Driven Value Chains in the World of Cellulose, the H2020-ERC-2017-Advanced Grant “BioELCell” (788489) and the Canada Excellence Research Chair program. We acknowledge the Academy of Finland’s Centers of Excellence program (project 264677, HYBER). M.L. is grateful to KAUTE, the Finnish Science Foundation for Technology and Economics, for their financial support. A.C.P. thanks Biocenter Finland for infrastructure support. We are thankful to Prof. Tapani Vuorinen as well Sappi-Finland for supplying samples of mechanical pulp. We also acknowledge Joseph Campbell for doing the XPS measurement. Finally, we appreciate the discussions and suggestions of Dr. Michael Hummel (Aalto), Hannes Orelma (VTT), and Daisuke Sawada (Aalto). We also acknowledge the use of premises in Aalto Nanomicroscopy center (Otanano) in this study.
Keywords
- Carbon fibers
- Lignin
- Nanocellulose
- Supercapacitance
- Wet spinning
- Wood
Fingerprint
Dive into the research topics of 'Mesoporous Carbon Microfibers for Electroactive Materials Derived from Lignocellulose Nanofibrils'. Together they form a unique fingerprint.Projects
- 2 Finished
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BioELCell: Bioproducts Engineered from Lignocelluloses: from plants and upcycling to next generation materials
Rojas, O. (Principal investigator), Ressouche, E. (Project Member), Ajdary, R. (Project Member), Johansson, L.-S. (Project Member), Usai, L. (Project Member), Abidnejad, R. (Project Member), Tardy, B. (Project Member), Zhao, B. (Project Member), Greca, L. (Project Member), Bhattarai, M. (Project Member), Meng, Y. (Project Member), Majoinen, J. (Project Member), Zhu, Y. (Project Member), Klockars, K. (Project Member), Robertson, D. (Project Member), Reyes Torres, G. (Project Member), Kämäräinen, T. (Project Member), Dufau Mattos, B. (Project Member) & Zanjanizadeh Ezazi, N. (Project Member)
30/07/2018 → 31/07/2023
Project: EU: ERC grants
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the Academy of Finland's Centre of Excellence in Molecular Engineering of Biosynthetic Hybrid Materials research (2014-2019), HYBER
Laine, J. (Principal investigator), Johansson, L.-S. (Project Member), Borghei, M. (Project Member), Lehtonen, J. (Project Member), Vuoriluoto, M. (Project Member), Uddin, A. (Project Member), Xiang, W. (Project Member), Zhu, Y. (Project Member), Guo, J. (Project Member), Klockars, K. (Project Member), Majoinen, J. (Project Member), Ishfaq, A. (Project Member) & Kämäräinen, T. (Project Member)
01/01/2017 → 31/12/2019
Project: Academy of Finland: Other research funding
Equipment
-
OtaNano - Nanomicroscopy Center
Seitsonen, J. (Manager) & Rissanen, A. (Other)
OtaNanoFacility/equipment: Facility
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