Tiếng Việt

Photonic hydrogel of high solid cellulose with reconfigurability

221
2025-02-17 14:33:51
Xem bản dịch

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

Đề xuất liên quan
  • The output power of high power femtosecond laser breaking through the key bottleneck of average power can reach the order of 100 watts

    High energy, high average power femtosecond laser due to the attosecond high order harmonic generation, precision processing and manufacturing, biomedical and national defense and other fields of extensive application needs, is the forefront of ultrafast super laser technology research in the past decade.Especially fiber laser due to stable and reliable operation characteristics, compact structure...

    2023-09-04
    Xem bản dịch
  • Tesla Intelligent Robot Vacuum Laser AI200 has a maximum operating time of 130 minutes

    In most cases, devices that are part of so-called smart homes have become a part of our lives. These appliances have a significant impact on our comfort level and contribute to daily household chores, such as cleaning. There are many products in the market that have paved the way in this regard, but the amount we usually have to pay for them effectively prevents us from purchasing.Of course, we ca...

    2023-11-10
    Xem bản dịch
  • Laser Photonics wins a large order from Lufthansa Technologies subsidiary

    Recently, American laser cleaning system developer Laser Photonics announced that the company has successfully secured an order for a cleaning technology laser cleaning system from Lufthansa Technik Puerto Rico, a technology subsidiary of Lufthansa, the largest aviation group in Europe.Lufthansa Technik is the world's largest independent provider dedicated to providing maintenance, repair, and com...

    2023-12-19
    Xem bản dịch
  • Exail acquires laser company Leukos

    On January 6, 2025, Exail acquired Leukos, a laser company specializing in advanced laser sources for metrology, spectroscopy, and imaging applications. The financial terms of this acquisition have not been disclosed yet. Leukos will operate as a subsidiary of Exail, retaining its product portfolio and brand. This acquisition combines Leukos' advanced technologies, including pulsed micro lasers,...

    01-08
    Xem bản dịch
  • Fraunhofer ISE develops a faster laser system for wafer processing

    By using a new type of laser, the processing speed of wafers can be 10 to 20 times faster than before. This is the result of a research project at the Fraunhofer Institute for Solar Systems in Germany.Researchers have developed a prototype that can use ultraviolet waves to carve the most intricate structures on silicon wafers. The new system concept enables solar cell manufacturers to perform lase...

    2023-12-23
    Xem bản dịch