Exceptional energy absorption characteristics and compressive resilience of functional carbon foams scalably and sustainably derived from additively manufactured kraft paper

To incentivize carbon sequestration activities, kraft paper, a renewable and recyclable bioproduct that is already manufactured at scale, is proposed as feedstock for producing economically viable carbon materials. The paper was first additively manufactured into 3D open cell honeycombs and closed c...

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Main Authors: Lai, Chang Quan, Lim, Guo Yao, Tai, Kai Jie, Lim, Dominic Kang Jueh, Yu, Linghui, Kanaujia, Pawan Kumar, Seetoh, Ian Peiyuan
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2023
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Online Access:https://hdl.handle.net/10356/164857
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1648572023-02-25T15:31:59Z Exceptional energy absorption characteristics and compressive resilience of functional carbon foams scalably and sustainably derived from additively manufactured kraft paper Lai, Chang Quan Lim, Guo Yao Tai, Kai Jie Lim, Dominic Kang Jueh Yu, Linghui Kanaujia, Pawan Kumar Seetoh, Ian Peiyuan School of Mechanical and Aerospace Engineering School of Materials Science and Engineering Temasek Laboratories @ NTU Engineering::Materials Kraft Paper Glassy Carbon To incentivize carbon sequestration activities, kraft paper, a renewable and recyclable bioproduct that is already manufactured at scale, is proposed as feedstock for producing economically viable carbon materials. The paper was first additively manufactured into 3D open cell honeycombs and closed cell plate lattices using a sheet lamination process before being pyrolyzed into paper-derived architected carbon foams (PDACFs). In the isostress orientation, PDACFs displayed low moduli, high elastic strains (~ 30–40%) and a compressive resilience similar to graphene aerogels, but at stresses up to ~ 3 orders of magnitude higher, despite the brittle nature of the carbonized fibers. In the isostrain orientation, PDACFs exhibited better moduli (~ 1 MPa – 1 GPa), which were comparable to conventional carbon foams, and smaller elastic strains (~ 5–10%). Failure in isostrain orientation proceeded by fracture propagation through and/ or between the layers while cracks in the isostress orientation extended mainly across the layers. The strength of the PDACFs (~ 0.2 – 14 MPa) was similar in both orientations, however, likely because both interlayer and intralayer failure onset involved microscopic fractures initiating and propagating through a multitude of carbonized fiber interfaces. Notably, Honeycombs and Plate Simple Cubic PDACFs exhibited a combination of strength (> 3 MPa) and energy absorption (> 1 MJ/m3; > 1 kJ/kg) not found in porous carbon materials previously, suggesting that the hierarchical arrangement of carbonized fibers within a macroscopic lattice architecture is better for dissipating energy than the tetrakaidecahedron microstructure commonly found in foams. Furthermore, as an electrode in a Li-ion battery, the carbonized cellulose making up PDACFs showed reversible specific capacities of 65–140 mAh/g at a specific current of 10 mA/g for 300 cycles, which is comparable to that of commercial lithium manganese oxide batteries and graphitic anodes derived from non-renewable polymer foams. Nanyang Technological University Published version This work was partially supported by Chang Quan Lai’s startup grant (Funder: Nanyang Technological University, Singapore; Award No.: 020868-00001). 2023-02-20T07:10:15Z 2023-02-20T07:10:15Z 2022 Journal Article Lai, C. Q., Lim, G. Y., Tai, K. J., Lim, D. K. J., Yu, L., Kanaujia, P. K. & Seetoh, I. P. (2022). Exceptional energy absorption characteristics and compressive resilience of functional carbon foams scalably and sustainably derived from additively manufactured kraft paper. Additive Manufacturing, 58, 102992-. https://dx.doi.org/10.1016/j.addma.2022.102992 2214-7810 https://hdl.handle.net/10356/164857 10.1016/j.addma.2022.102992 2-s2.0-85133295343 58 102992 en 020868-00001 Additive Manufacturing © 2022 The Author(s). Published by Elsevier B.V. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/). application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Materials
Kraft Paper
Glassy Carbon
spellingShingle Engineering::Materials
Kraft Paper
Glassy Carbon
Lai, Chang Quan
Lim, Guo Yao
Tai, Kai Jie
Lim, Dominic Kang Jueh
Yu, Linghui
Kanaujia, Pawan Kumar
Seetoh, Ian Peiyuan
Exceptional energy absorption characteristics and compressive resilience of functional carbon foams scalably and sustainably derived from additively manufactured kraft paper
description To incentivize carbon sequestration activities, kraft paper, a renewable and recyclable bioproduct that is already manufactured at scale, is proposed as feedstock for producing economically viable carbon materials. The paper was first additively manufactured into 3D open cell honeycombs and closed cell plate lattices using a sheet lamination process before being pyrolyzed into paper-derived architected carbon foams (PDACFs). In the isostress orientation, PDACFs displayed low moduli, high elastic strains (~ 30–40%) and a compressive resilience similar to graphene aerogels, but at stresses up to ~ 3 orders of magnitude higher, despite the brittle nature of the carbonized fibers. In the isostrain orientation, PDACFs exhibited better moduli (~ 1 MPa – 1 GPa), which were comparable to conventional carbon foams, and smaller elastic strains (~ 5–10%). Failure in isostrain orientation proceeded by fracture propagation through and/ or between the layers while cracks in the isostress orientation extended mainly across the layers. The strength of the PDACFs (~ 0.2 – 14 MPa) was similar in both orientations, however, likely because both interlayer and intralayer failure onset involved microscopic fractures initiating and propagating through a multitude of carbonized fiber interfaces. Notably, Honeycombs and Plate Simple Cubic PDACFs exhibited a combination of strength (> 3 MPa) and energy absorption (> 1 MJ/m3; > 1 kJ/kg) not found in porous carbon materials previously, suggesting that the hierarchical arrangement of carbonized fibers within a macroscopic lattice architecture is better for dissipating energy than the tetrakaidecahedron microstructure commonly found in foams. Furthermore, as an electrode in a Li-ion battery, the carbonized cellulose making up PDACFs showed reversible specific capacities of 65–140 mAh/g at a specific current of 10 mA/g for 300 cycles, which is comparable to that of commercial lithium manganese oxide batteries and graphitic anodes derived from non-renewable polymer foams.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Lai, Chang Quan
Lim, Guo Yao
Tai, Kai Jie
Lim, Dominic Kang Jueh
Yu, Linghui
Kanaujia, Pawan Kumar
Seetoh, Ian Peiyuan
format Article
author Lai, Chang Quan
Lim, Guo Yao
Tai, Kai Jie
Lim, Dominic Kang Jueh
Yu, Linghui
Kanaujia, Pawan Kumar
Seetoh, Ian Peiyuan
author_sort Lai, Chang Quan
title Exceptional energy absorption characteristics and compressive resilience of functional carbon foams scalably and sustainably derived from additively manufactured kraft paper
title_short Exceptional energy absorption characteristics and compressive resilience of functional carbon foams scalably and sustainably derived from additively manufactured kraft paper
title_full Exceptional energy absorption characteristics and compressive resilience of functional carbon foams scalably and sustainably derived from additively manufactured kraft paper
title_fullStr Exceptional energy absorption characteristics and compressive resilience of functional carbon foams scalably and sustainably derived from additively manufactured kraft paper
title_full_unstemmed Exceptional energy absorption characteristics and compressive resilience of functional carbon foams scalably and sustainably derived from additively manufactured kraft paper
title_sort exceptional energy absorption characteristics and compressive resilience of functional carbon foams scalably and sustainably derived from additively manufactured kraft paper
publishDate 2023
url https://hdl.handle.net/10356/164857
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