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Block copolymer-enabled mesopore sensing

Block copolymer-enabled mesopore sensing
嵌段共聚物中孔传感
批准号:
EP/R035105/1
负责人:
Stefan Guldin
金额:
$59.09万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2018
资助国家:
英国
项目状态:
已结题
起止时间:
2018 至 --

项目摘要

项目成果

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中文摘要
翻译
具有5 - 50纳米长度尺度孔隙的材料结构为化学和生物传感应用提供了独特的机会。毛细管冷凝,即由气相的冷凝液体填充孔隙,高度依赖于孔隙大小和相对湿度。目标分析物的有效捕获与充分的表面相互作用和对空间限制的控制相结合。本研究计划的目的是通过使用嵌段共聚物(BCP)共组装提供的结构控制,构建具有前所未有的湿度和生物医学传感功能的多孔材料。bcp是由化学上不同的构建块组成的大分子,它们通过共价键连接在一起。溶剂蒸发导致相分离成纳米级的形态,这可以通过bcp的分子设计来控制。在共组装方法中,bcp被用作牺牲宿主来结构直接无机客体材料。在结构形成后,除去有机材料,露出多孔的无机网络。从概念上讲,这种方法允许系统地改变和控制多孔薄膜的关键参数,如孔隙率、孔径和分散性以及孔结构,通过修改分子构建块和加工条件。在本研究的过程中,将阐明控制孔径和分散性的参数,并在湿度和生物医学传感两种不同的传感平台上评估bcp衍生多孔材料的总体有效性。在湿度传感方面,将追求透明材料架构的制造,通过电容手段在整个湿度范围内进行准确测定,为汽车和建筑应用提供响应式玻璃组件的集成路线。研究结果将在具有响应式防雾控制的挡风玻璃原型中实施。随着内燃机逐渐走向电气化交通,热量不再丰富,从而成为能源消耗的重大负担,这种技术将产生广泛的影响。对于生物医学传感,目标分析物在多孔网络中的捕获将被研究用于许多候选物,这些候选物的定量在治疗中很重要,例如病毒、治疗性抗体、外泌体或microRNA。有效捕获的适用性和设想的优越的孔隙大小控制将在新型生物传感器中实现,这些传感器允许通过与孔隙堵塞相关的电化学电流变化进行检测。成功的原理验证将刺激低成本手持式诊断设备在护理点应用的发展,以最小的副作用改善治疗结果。
英文摘要
Material architectures with pores on the 5 - 50 nm length scale offer distinct opportunities for chemo- and biosensing applications. Capillary condensation, i.e. the filling of pores with condensed liquid from the vapour phase, is highly dependent on the pore size and relative humidity. Efficient trapping of target analytes relates to a combination of adequate surface interaction and control over spatial confinement. The aim of this research proposal is to build porous materials with unprecedented functioning in humidity and biomedical sensing through the structural control offered by the use of block copolymer (BCP) co-assembly. BCPs are macromolecules that are composed of chemically dissimilar building blocks, which are linked by covalent bonds. Solvent evaporation leads to phase separation into nanoscale morphologies, which can be controlled by the molecular design of the BCPs. In a co-assembly approach, BCPs are used as sacrificial host to structure direct inorganic guest material. After structure formation, the organic material is removed to reveal a porous inorganic network. Conceptually, this approach allows to systematically vary and control key parameters of porous thin films, such as porosity, pore size and dispersity as well as the pore architecture, by modifications to the molecular building blocks and processing conditions. In the course of the proposed study, parameters that govern the pore size and dispersity will be elucidated and general effectiveness of BCP-derived porous materials evaluated on two different sensing platforms, namely humidity and biomedical sensing. In humidity sensing, the fabrication of transparent material architectures will be pursued that allow accurate determination over the full humidity range via capacitative means, offering an integrated route to responsive glazing components for automotive and building applications. Findings will be implemented in a windscreen prototype with responsive anti-fogging control. In the light of the gradual extinction of the internal combustion engine towards electrified mobility where heat is no longer abundant and thus a significant burden to the energy consumption, such technology will offer widespread impact. For biomedical sensing, the trapping of target analytes in porous networks will be studied for a number of candidates whose quantification is important in therapy, e.g. viruses, therapeutic antibodies, exosomes or microRNA. Applicability of effective trapping and the envisioned superior pore size control will be implemented in novel types of biosensors that allow detection by changes in electrochemical currents associated to a blockage of the pores. Successful proof-of-principle will stimulate the development of low-cost handheld diagnostic devices in point-of-care applications to improve therapeutic outcomes at minimal side-effects.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
Solvent Vapor Annealing for Controlled Pore Expansion of Block Copolymer-Assembled Inorganic Mesoporous Films.
溶剂蒸气退火,用于控制块共聚物组合的无机介孔膜的孔扩展。
DOI: 10.1021/acs.langmuir.2c00074
发表时间: 2022-03-15
期刊: LANGMUIR
影响因子: 3.9
作者: [Alvarez-Fernandez, Alberto, Fornerod, Maximiliano Jara, Reid, Barry, Guldin, Stefan]
通讯作者: Guldin, Stefan
DOI: 10.1039/d0nr05132b
发表时间: 2020-09-21
期刊: NANOSCALE
影响因子: 6.7
作者: [Alvarez-Fernandez, Alberto, Reid, Barry, Guldin, Stefan]
通讯作者: Guldin, Stefan
DOI: 10.1016/j.tsf.2023.139683
发表时间: 2023-01-22
期刊: THIN SOLID FILMS
影响因子: 2.1
作者: [Furedi, Mate, Fodor, Balint, Basa, Peter]
通讯作者: Basa, Peter
Solvent vapor annealing for controlled pore expansion of block copolymer-assembled inorganic mesoporous films
溶剂蒸气退火控制嵌段共聚物组装无机介孔薄膜的孔径扩张
DOI: 10.26434/chemrxiv-2021-8v9t7
发表时间: 2021
期刊:
影响因子: --
作者: [Alvarez-Fernandez A]
通讯作者: Alvarez-Fernandez A
国内基金
海外基金
嵌段共聚物多级自组装的多尺度模拟
  • 批准号:
    20974040
  • 项目类别:
    面上项目
  • 资助金额:
    33.0万元
  • 批准年份:
    2009
  • 负责人:
    吕中元
  • 依托单位: