Projects per year
Abstract
Cellulose foams produced by wet-templating fibers and surfactants offer an unlimited creative space for the design of green functional materials with a wide range of energy-related applications. Aiming to reduce plastic pollution, cellulose foams promise to replace plastic foams after tailoring physical functionalities into their structures. Here, this work demonstrates that cellulose foams made of methylcellulose and cellulose fibers can exhibit a solid–liquid phase change functionality by adding a phase change material (PCM) during the foam-forming process. The resulting foam composites, termed cellulose phase change foams (PCFs), exhibit a tenth of cellulose's density (134.7 kg m−3) yet a high Young's modulus (0.42MPa). They are also dimensionally stable over a wide range of temperatures while absorbing up to 108 kJ kg−1 as latent heat when the PCM confined to the foam experiences a solid-to-liquid transition at ∼60 °C, and releasing 108 kJ kg−1 as latent heat when changing from liquid to solid at ∼40 °C. Such phase change transition opens up broad applications for the PCFs as thermal insulators. For example, by further tuning the transition temperature, the PCFs can exploit their phase change and reduce the heat flow rate through their radial direction at specified temperatures. This article showcases the versatility of the foam-forming process of cellulose to accommodate physical functionalities in materials with complex architectures. Furthermore, thanks to the advances in cellulose foam-forming, such foams are recyclable, industrially scalable, and can be exploited as heat storage materials.
Original language | English |
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Article number | 109036 |
Pages (from-to) | 1-10 |
Number of pages | 10 |
Journal | Journal of Energy Storage |
Volume | 73 |
DOIs | |
Publication status | Published - 10 Dec 2023 |
MoE publication type | A1 Journal article-refereed |
Keywords
- Cellulose foam
- Energy storage material
- Machine learning
- Phase change material
- Polyethylene glycol
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Dive into the research topics of 'Cellulose foams as scalable templates for phase change materials'. Together they form a unique fingerprint.Projects
- 4 Finished
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CirPa: Aalto-R2B-Circular Panels
Alava, M. (Principal investigator)
01/01/2023 → 30/06/2024
Project: Business Finland: New business from research ideas (TUTLI)
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Soma/Yazdani: Green engineering of sorption materials for seasonal thermal energy storage: Development, system implementation, and life cycle assessment
Yazdani, R. (Principal investigator)
01/09/2021 → 31/08/2024
Project: Academy of Finland: Other research funding
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TUTL FoamWood: Manufacturing novel bio-based Woodlike foams by a continuous forming process
Alava, M. (Principal investigator)
01/01/2021 → 30/06/2022
Project: Business Finland: New business from research ideas (TUTLI)
Press/Media
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Study Data from Aalto University Provide New Insights into Energy Storage (Cellulose Foams As Scalable Templates for Phase Change Materials)
Koivisto, J., Alava, M., Yazdani McCord, R., Viitanen, L. & Mäkinen, T.
11/12/2023
1 item of Media coverage
Press/Media: Media appearance