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通过时间分辨压力跳跃小角中子散射研究智能N-正丙基丙烯酰胺微凝胶的体积相变动力学。

Volume phase transition kinetics of smart N-n-propylacrylamide microgels studied by time-resolved pressure jump small angle neutron scattering.

作者信息

Wrede Oliver, Reimann Yvonne, Lülsdorf Stefan, Emmrich Daniel, Schneider Kristina, Schmid Andreas Josef, Zauser Diana, Hannappel Yvonne, Beyer André, Schweins Ralf, Gölzhäuser Armin, Hellweg Thomas, Sottmann Thomas

机构信息

Physical and Biophysical Chemistry, Bielefeld University, Bielefeld, Germany.

Institute of Physical Chemistry, University of Cologne, Cologne, Germany.

出版信息

Sci Rep. 2018 Sep 13;8(1):13781. doi: 10.1038/s41598-018-31976-4.

Abstract

The use of smart colloidal microgels for advanced applications critically depends on their response kinetics. We use pressure jump small angle neutron scattering with supreme time resolution to study the rapid volume phase transition kinetics of such microgels. Utilizing the pressure induced microphase separation inside the microgels we were able to resolve their collapse and swelling kinetics. While the collapse occurs on a time scale of 10 ms, the particle swelling turned out to be much faster. Photon correlation spectroscopy and static small angle neutron scattering unambiguously show, that the much slower collapse can be associated with the complex particle architecture exhibiting a loosely-crosslinked outer region and a denser inner core region. These insights into the kinetics of stimuli-responsive materials are of high relevance for their applications as nano-actuators, sensors or drug carriers. Moreover, the used refined pressure jump small angle neutron scattering technique is of broad interest for soft matter studies.

摘要

智能胶体微凝胶在先进应用中的使用严重依赖于它们的响应动力学。我们使用具有极高时间分辨率的压力跳跃小角中子散射来研究此类微凝胶的快速体积相变动力学。利用微凝胶内部压力诱导的微相分离,我们能够解析它们的塌缩和溶胀动力学。虽然塌缩发生在10毫秒的时间尺度上,但粒子溶胀结果要快得多。光子相关光谱和静态小角中子散射明确表明,慢得多的塌缩可能与具有松散交联的外部区域和致密的内部核心区域的复杂粒子结构有关。这些对刺激响应材料动力学的见解对于它们作为纳米致动器、传感器或药物载体的应用具有高度相关性。此外,所使用的改进型压力跳跃小角中子散射技术在软物质研究中具有广泛的兴趣。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d771/6137196/cf3c2f4d14d4/41598_2018_31976_Fig7_HTML.jpg

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