邮箱
官方微信
中国农科院公众号
  • 首页
  • 实验室概况
    实验室简介
    实验室领导
    学术委员会
    历届实验室领导
    历届学术委员会
    组织框架
  • 科学研究
    科研进展
    发表论文
    出版专著
    获奖成果
  • 研究队伍
    院士风采
    杰出人才
    实验室PI
  • 人才培养
    博士后流动站
    研究生培养
    博士生导师
    硕士生导师
  • 开放交流
    学术交流
    开放课题
    合作平台
  • 公用平台
    仪器设备
    开放预约
    平台动态
    野外台站
    数据中心
  • 党建文化
    科学家精神
    学术讲堂
  • 管理制度
邮箱
官方微信
中国农科院公众号
  • 首页
  • 实验室概况
    实验室简介
    实验室领导
    学术委员会
    历届实验室领导
    历届学术委员会
    组织框架
  • 科学研究
    科研进展
    发表论文
    出版专著
    获奖成果
  • 研究队伍
    院士风采
    杰出人才
    实验室PI
  • 人才培养
    博士后流动站
    研究生培养
    博士生导师
    硕士生导师
  • 开放交流
    学术交流
    开放课题
    合作平台
  • 公用平台
    仪器设备
    开放预约
    平台动态
    野外台站
    数据中心
  • 党建文化
    科学家精神
    学术讲堂
  • 管理制度
首页> 最新文章
分享到

Hanghang Zhang, Yingxi Zhang, Manli Yu, Chong Cao, Pengyue Zhao, Qiliang Huang, Lidong Cao.Photo-responsive supramolecular hydrogels to enhance pesticide bioavailability through multiple structural transformations.

发布时间:2025-03-03

Chemical Engineering Journal,2025,https://doi.org/10.1016/j.cej.2025.159473

Abstract

An elaborate combination of molecular self-assembly strategies and structurally reversible hydrogels can provide a versatile toolbox to address the limitations of current pesticides. However, when hydrogels are deposited on target surfaces and transferred into non-target environments, the functionalization of hydrogels with regulatory switches to realize smart, responsive release of pesticides remains a significant challenge. Herein, a ternary mixture of C18-modified poly (acrylic acid), α-cyclodextrin, and 1-[p-(phenyl-azo)benzyl]pyridinium bromide was used as an assembly building block to induce reversible phase transitions between pyraclostrobin (Pyr)-loaded gel (Gel@Pyr) and Pyr-loaded sol (Sol@Pyr) by repetitive irradiations of ultraviolet (UV) and visible light. This hydrogel system exhibited excellent stability, bioactivity, and biosafety. The protection of Gel@Pyr against UV irradiation was approximately 18 times that of NSC@Pyr, which can be attributed to the shielding effect of the supramolecular gel network. Owing to the superior affinity of Gel@Pyr for the micro/nanostructures of rice leaves, droplet rebounding was inhibited, resulting in a substantial increase surface deposition approximately 10-fold compared with that of Pyr nano-suspension concentrates. Moreover, water was employed as a trigger to initiate the in situ microencapsulation of Gel@Pyr to achieve a structural transformation, which considerably reduced the acute toxicity toward zebrafish, an aquatic organism. This study aims to pave the way for designing tailored supramolecular hydrogels with multifunctionality and sustainability for smart pesticide delivery.

Graphical abstract

61.jpg

Chemical Engineering Journal,IF=13.4

https://www.sciencedirect.com/science/article/pii/S1385894725002724

打印本页
关闭本页

地址:北京市海淀区圆明园西路2号南2门邮编:100193

中国农业科学院植物保护研究所版权所有

京ICP备05034986号-1京公网安备 11010802025499 号

技术支持:中国农业科学院农业信息研究所