Italiano

Photonic hydrogel of high solid cellulose with reconfigurability

785
2025-02-17 14:33:51
Vedi traduzione

Recently, Qing Guangyan, a researcher team from the Research Group on Bioseparation and Interface Molecular Mechanism (1824 Group) of Biotechnology Research Department of Dalian Institute of Chemical Physics, Chinese Academy of Sciences, designed and prepared a highly solid cellulose photonic hydrogel with reconfigurability and mechanical discoloration. This preparation method opens up a new way to manufacture solid photonic hydrogels, and its intelligent optical response characteristics are expected to expand the application of bionic photonic cellulose materials in medical, energy and industrial fields.

The structure of Bouligand, which mimics the natural world, exhibits excellent mechanical properties due to its interlayer coupling and stress transfer mechanism, inspiring the development of high-performance materials such as impact resistant bioplastics, ceramic protective clothing, and biomimetic alloy composites. Although significant progress has been made in engineering plasticity through molecular level design and multi-scale structural optimization of biomimetic Bouligand structures, most existing materials are composed of single scale brittle units, lacking graded active interfaces and autonomous response capabilities, resulting in limited ductility and functionality. Therefore, it is necessary to break through the existing design bottlenecks and develop a new Bouligand structural material system that simultaneously possesses multi-level active interfaces, dynamic response capabilities, and high toughness, in order to enhance and optimize the rigidity and ductility of the material. Building strategies that balance micro motion and structural robustness, fundamentally breaking the contradiction between brittleness and toughness, and overcoming key technical challenges that hinder the practical application of biomimetic materials, is expected to solve the above-mentioned problems.

 



In this work, the team provided a widely applicable solution for the Bouligand structure through self-assembly of cellulose nanocrystals (CNC). This strategy achieves precise control of the spatial arrangement of the network matrix through nanofiber sliding and hydrogen bonding reconstruction. This transition is driven by the hydrogen bond action activated by water molecules to form a solid photonic hydrogel. The obtained Bouligand structure hydrogel shows excellent mechanical properties. Compared with the initial hydrogel, its toughness value has increased by 5 times, reaching 155.5MJ/m&# 179;, Stretchability exceeds 950%. In addition, these photonic hydrogels exhibit dynamic color change ability, can switch between red and blue, and maintain stable electrical sensitivity during reversible stretching. The imaging interface of the photonic hydrogel is durable and can be used repeatedly. It only needs to soak in water for 5 minutes to restore its activity. This work has opened up a new path for the practical application of CNC, which is expected to be applied in fields such as sustainable bioplastics, flexible electronic substrates, and intelligent photonic devices.

In recent years, the team led by Qing Guangyan has made a series of progress in the chiral functionalization research of nanocellulose. In the early stage, they have developed multi-mode and convertible chiral optical anti-counterfeiting films (Adv. Funct. Mater., 2022), flexible sweat sensors based on photonic cellulose nanocrystals (Small, 2023), left-handed circularly polarized luminescent cellulose films (Adv. Mater., 2024), and synergistic color changing and conductive cellulose nanocrystal photonic patches (Mater. Horizon., 2024).

The related research findings, titled "Highly robust cellulose photonic hydrogels with reconfigurability and mechanochromism," were recently published in Materials Today. The first author of this work is Li Qiongya, a doctoral student from the 1824 group of the institute.

Source: opticsky

Raccomandazioni correlate
  • Laser Photonics Corporation sets high growth strategy for 2025

    Recently, laser cleaning equipment manufacturer Laser Photonics Corporation (LPC) announced its ambitious 2025 growth strategy, emphasizing innovation, strategic investment, and market expansion. LPC Executive Vice President John Armstrong stated:With a solid foundation laid in 2024, we will enter 2025 with clear momentum and a firm focus on growth. The progress we made last year - strengthening...

    01-20
    Vedi traduzione
  • Shanghai Optical Machinery Institute has made progress in laser assisted connection of metal carbon fiber composite heterojunction materials

    Recently, the research team of Yang Shanglu from the Laser Intelligent Manufacturing Technology R&D Center of the Chinese Academy of Sciences Shanghai Institute of Optics and Fine Mechanics has made new progress in the laser assisted connection of metal carbon fiber composite heterostructure joints.The team used an adjustable flat top rectangular semiconductor laser as a heat source to achieve...

    2023-09-01
    Vedi traduzione
  • Halloween\Christmas Laser Processing Art Carnival !!

    Chanelink Halloween\Christmas Laser Processing Art CarnivalShow your design talent and win a cool laser engraver cutter.TimeUpload of work and canvassing period: October 25, 2023 - December 25, 2023Winner announcement time : December 29, 2023ContentEligible participant:Laser industry practitioners, enthusiasts, who must be at least 18 years old.Awards:First prize (1...

    2023-10-25
    Vedi traduzione
  • Alliance unit Hongshan Laser has released multiple "heavyweight" new products such as heavy-duty pipe cutting machines, ushering in the era of "laser+"

    On September 19th, Hongshan Laser made a stunning appearance at the Shanghai Industrial Expo with multiple flagship products. Among them, the "4+1" fully free heavy-duty groove laser pipe cutting machine TL730S, the 6G fully direct drive laser cutting machine G4020V, and the flagship drilling and attacking integrated laser composite pipe cutting machine TP65SD, represented by three new products, v...

    2023-09-21
    Vedi traduzione
  • A new type of all-optical intelligent spectrometer

    Recently, Professor Xu Tingfa's research team from the School of Optoelectronics at Beijing Institute of Technology and Assistant Professor Lin Xing's team from Tsinghua University jointly developed a new type of Opto Intelligence Spectrometer (OIS). The device is based on diffractive neural network technology and achieves precise spectral reconstruction under spatially coherent or spatially incoh...

    2024-07-22
    Vedi traduzione