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一种自牺牲间隔基,可在中性条件下实现对酚类物质的可调控制释放。

A self-immolative spacer that enables tunable controlled release of phenols under neutral conditions.

机构信息

Department of Chemistry, The Pennsylvania State University, University Park, Pennsylvania 16802, USA.

出版信息

J Org Chem. 2012 May 4;77(9):4363-74. doi: 10.1021/jo300400q. Epub 2012 Apr 17.

Abstract

A current challenge in the area of responsive materials is the design of reagents and polymers that provide controlled release of phenols in environments that are less polar than water. In these contexts, a molecular strategy that enables release of nearly any phenol with predictable and tunable rates and without complication from background hydrolysis would substantially increase the precision with which materials can be designed to respond to a particular signal. This Article addresses this problem at the fundamental level by describing the design, synthesis, and physical-organic characterization of two small molecule self-immolative spacers that are capable of releasing phenols in organic and mixed organic-aqueous solutions. The rate of release from these small molecule model systems is predictable and tunable, such that nearly any type of phenol, regardless of pK(a) value, can be released in neutral solutions without complications from nonspecific background release due to hydrolysis. Furthermore, the release properties of the spacers can be predicted from bond length and conformation data (obtained from crystal structures). On the basis of these results, it should now be possible to incorporate these design elements into materials to enable precise response properties in environments that are not 100% aqueous.

摘要

响应性材料领域目前面临的一个挑战是设计试剂和聚合物,以便在极性低于水的环境中控制酚类物质的释放。在这些情况下,如果有一种分子策略能够以可预测和可调的速率释放几乎任何酚类物质,并且不受背景水解的影响,那么这将极大地提高材料设计对特定信号响应的精确性。本文通过描述两种小分子自耗性间隔物的设计、合成和物理有机特性,从根本上解决了这个问题,这两种小分子自耗性间隔物能够在有机和混合有机-水溶液中释放酚类物质。这些小分子模型系统的释放速率是可预测和可调的,因此,几乎任何类型的酚类物质,无论其 pK(a)值如何,都可以在中性溶液中释放,而不会因水解引起的非特异性背景释放而产生并发症。此外,还可以根据键长和构象数据(从晶体结构中获得)来预测间隔物的释放特性。基于这些结果,现在应该可以将这些设计元素整合到材料中,以便在非 100%水的环境中实现精确的响应特性。

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