Mechanically Strong, Liquid-Resistant Photothermal Bioplastic Constructed from Cellulose and Metal-Organic Framework for Light-Driven Mechanical Motion

The development of photothermal materials with a high light-to-heat conversion capability is essential for the utilization of clean solar energy. In this work, we demonstrate the use of a novel and sustainable concept involving cellulose liquefaction, rapid gelation, in situ synthesis and hot-press...

Full description

Bibliographic Details
Main Authors: Lijian Sun, Limei Li, Xianhui An, Xueren Qian
Format: Article
Language:English
Published: MDPI AG 2021-07-01
Series:Molecules
Subjects:
Online Access:https://www.mdpi.com/1420-3049/26/15/4449
id doaj-7992670993e34c04a0eec06a35bf60e1
record_format Article
spelling doaj-7992670993e34c04a0eec06a35bf60e12021-08-06T15:28:46ZengMDPI AGMolecules1420-30492021-07-01264449444910.3390/molecules26154449Mechanically Strong, Liquid-Resistant Photothermal Bioplastic Constructed from Cellulose and Metal-Organic Framework for Light-Driven Mechanical MotionLijian Sun0Limei Li1Xianhui An2Xueren Qian3Key Laboratory of Bio-Based Material Science & Technology, Northeast Forestry University, Ministry of Education, Harbin 150040, ChinaKey Laboratory of Bio-Based Material Science & Technology, Northeast Forestry University, Ministry of Education, Harbin 150040, ChinaKey Laboratory of Bio-Based Material Science & Technology, Northeast Forestry University, Ministry of Education, Harbin 150040, ChinaKey Laboratory of Bio-Based Material Science & Technology, Northeast Forestry University, Ministry of Education, Harbin 150040, ChinaThe development of photothermal materials with a high light-to-heat conversion capability is essential for the utilization of clean solar energy. In this work, we demonstrate the use of a novel and sustainable concept involving cellulose liquefaction, rapid gelation, in situ synthesis and hot-press drying to convert cellulose and metal–organic framework (Prussian blue) into a stable photothermal bioplastic that can harvest sunlight and convert it into mechanical motion. As expected, the obtained Prussian blue@cellulose bioplastic (PCBP) can effectively absorb sunlight and the surface can be heated up to 70.3 °C under one sun irradiation (100 mW cm<sup>−2</sup>). As a demonstration of the practicality of PCBP, it was successfully used to drive a Stirling engine motion. Meanwhile, hot-pressing promotes the densification of the structure of PCBP and, therefore, improves the resistance to the penetration of water/non-aqueous liquids. Moreover, PCBP shows good mechanical properties and thermal stability. Given the excellent photothermal performance and environmentally friendly features of photothermal conversion bioplastic, we envisage this sustainable plastic film could play important roles toward diversified applications: a photothermal layer for thermoelectric generator, agricultural films for soil mulching and photothermal antibacterial activity, among others.https://www.mdpi.com/1420-3049/26/15/4449bioplasticPrussian blueliquid-resistantphotothermal conversionmechanical motionmechanical properties
collection DOAJ
language English
format Article
sources DOAJ
author Lijian Sun
Limei Li
Xianhui An
Xueren Qian
spellingShingle Lijian Sun
Limei Li
Xianhui An
Xueren Qian
Mechanically Strong, Liquid-Resistant Photothermal Bioplastic Constructed from Cellulose and Metal-Organic Framework for Light-Driven Mechanical Motion
Molecules
bioplastic
Prussian blue
liquid-resistant
photothermal conversion
mechanical motion
mechanical properties
author_facet Lijian Sun
Limei Li
Xianhui An
Xueren Qian
author_sort Lijian Sun
title Mechanically Strong, Liquid-Resistant Photothermal Bioplastic Constructed from Cellulose and Metal-Organic Framework for Light-Driven Mechanical Motion
title_short Mechanically Strong, Liquid-Resistant Photothermal Bioplastic Constructed from Cellulose and Metal-Organic Framework for Light-Driven Mechanical Motion
title_full Mechanically Strong, Liquid-Resistant Photothermal Bioplastic Constructed from Cellulose and Metal-Organic Framework for Light-Driven Mechanical Motion
title_fullStr Mechanically Strong, Liquid-Resistant Photothermal Bioplastic Constructed from Cellulose and Metal-Organic Framework for Light-Driven Mechanical Motion
title_full_unstemmed Mechanically Strong, Liquid-Resistant Photothermal Bioplastic Constructed from Cellulose and Metal-Organic Framework for Light-Driven Mechanical Motion
title_sort mechanically strong, liquid-resistant photothermal bioplastic constructed from cellulose and metal-organic framework for light-driven mechanical motion
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2021-07-01
description The development of photothermal materials with a high light-to-heat conversion capability is essential for the utilization of clean solar energy. In this work, we demonstrate the use of a novel and sustainable concept involving cellulose liquefaction, rapid gelation, in situ synthesis and hot-press drying to convert cellulose and metal–organic framework (Prussian blue) into a stable photothermal bioplastic that can harvest sunlight and convert it into mechanical motion. As expected, the obtained Prussian blue@cellulose bioplastic (PCBP) can effectively absorb sunlight and the surface can be heated up to 70.3 °C under one sun irradiation (100 mW cm<sup>−2</sup>). As a demonstration of the practicality of PCBP, it was successfully used to drive a Stirling engine motion. Meanwhile, hot-pressing promotes the densification of the structure of PCBP and, therefore, improves the resistance to the penetration of water/non-aqueous liquids. Moreover, PCBP shows good mechanical properties and thermal stability. Given the excellent photothermal performance and environmentally friendly features of photothermal conversion bioplastic, we envisage this sustainable plastic film could play important roles toward diversified applications: a photothermal layer for thermoelectric generator, agricultural films for soil mulching and photothermal antibacterial activity, among others.
topic bioplastic
Prussian blue
liquid-resistant
photothermal conversion
mechanical motion
mechanical properties
url https://www.mdpi.com/1420-3049/26/15/4449
work_keys_str_mv AT lijiansun mechanicallystrongliquidresistantphotothermalbioplasticconstructedfromcelluloseandmetalorganicframeworkforlightdrivenmechanicalmotion
AT limeili mechanicallystrongliquidresistantphotothermalbioplasticconstructedfromcelluloseandmetalorganicframeworkforlightdrivenmechanicalmotion
AT xianhuian mechanicallystrongliquidresistantphotothermalbioplasticconstructedfromcelluloseandmetalorganicframeworkforlightdrivenmechanicalmotion
AT xuerenqian mechanicallystrongliquidresistantphotothermalbioplasticconstructedfromcelluloseandmetalorganicframeworkforlightdrivenmechanicalmotion
_version_ 1721217934568718336