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Functionalized Wood Veneers as Vibration Sensors: Exploring Wood Piezoelectricity and Hierarchical Structure Effects
KTH, Skolan för kemi, bioteknologi och hälsa (CBH), Centra, Wallenberg Wood Science Center. KTH, Skolan för kemi, bioteknologi och hälsa (CBH), Fiber- och polymerteknologi, Biokompositer.ORCID-id: 0000-0003-0476-3323
KTH, Skolan för kemi, bioteknologi och hälsa (CBH), Fiber- och polymerteknologi, Biokompositer. KTH, Skolan för kemi, bioteknologi och hälsa (CBH), Centra, Wallenberg Wood Science Center.ORCID-id: 0000-0002-1029-6912
KTH, Skolan för kemi, bioteknologi och hälsa (CBH), Centra, Wallenberg Wood Science Center. KTH, Skolan för kemi, bioteknologi och hälsa (CBH), Fiber- och polymerteknologi, Biokompositer.ORCID-id: 0000-0002-1591-5815
KTH, Skolan för kemi, bioteknologi och hälsa (CBH), Fiber- och polymerteknologi. KTH, Skolan för kemi, bioteknologi och hälsa (CBH), Centra, Wallenberg Wood Science Center.ORCID-id: 0000-0002-5444-7276
Vise andre og tillknytning
2022 (engelsk)Inngår i: ACS Nano, ISSN 1936-0851, E-ISSN 1936-086X, Vol. 16, nr 10, s. 15805-15813Artikkel i tidsskrift (Fagfellevurdert) Published
Abstract [en]

Functional wood materials often rely on active additives due to the weak piezoelectric response of wood itself. Here, we chemically modify wood to form functionalized, eco-friendly wood veneer for self-powered vibration sensors. Only the piezoelectricity of the cellulose microfibrils is used, where the drastic improvement comes only from molecular and nanoscale wood structure tuning. Sequential wood modifications (delignification, oxidation, and model fluorination) are performed, and effects on vibration sensing abilities are investigated. Wood veneer piezoelectricity is characterized by the piezoresponse force microscopy mode in atomic force microscopy. Delignification, oxidation, and model fluorination of wood-based sensors provide output voltages of 11.4, 23.2, and 60 mV by facilitating cellulose microfibril deformation. The vibration sensing ability correlates with improved piezoelectricity and increased cellulose deformation, most likely by large, local cell wall bending. This shows that nanostructural wood materials design can tailor the functional properties of wood devices with potential in sustainable nanotechnology. 

sted, utgiver, år, opplag, sider
American Chemical Society (ACS) , 2022. Vol. 16, nr 10, s. 15805-15813
Emneord [en]
nanoengineering, piezoelectric, sustainable energy technology, vibration sensing, wood functionalization, Additives, Cellulose, Deformation, Piezoelectricity, Sensors, Veneers, Vibration, Wood, Cell Wall, Microscopy, Atomic Force, Functionalizations, Functionalized, Nano-engineering, Vibration sensors, Wood materials, Wood veneer, atomic force microscopy, chemistry
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Identifikatorer
URN: urn:nbn:se:kth:diva-327298DOI: 10.1021/acsnano.2c04668ISI: 000855031500001PubMedID: 36067037Scopus ID: 2-s2.0-85138123419OAI: oai:DiVA.org:kth-327298DiVA, id: diva2:1758912
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QC 20230524

Tilgjengelig fra: 2023-05-24 Laget: 2023-05-24 Sist oppdatert: 2023-05-24bibliografisk kontrollert

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Ram, FarsaGaremark, JonasLi, YuanyuanPettersson, TorbjörnBerglund, Lars

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