Polymer Electronics Research Centre, School of Chemical Sciences , University of Auckland , Auckland 1010 , New Zealand.
The MacDiarmid Institute for Advanced Materials and Nanotechnology , Wellington 6140 , New Zealand.
Acc Chem Res. 2018 Jul 17;51(7):1581-1589. doi: 10.1021/acs.accounts.7b00596. Epub 2018 Jun 13.
The field of bioelectronics involves the fascinating interplay between biology and human-made electronics. Applications such as tissue engineering, biosensing, drug delivery, and wearable electronics require biomimetic materials that can translate the physiological and chemical processes of biological systems, such as organs, tissues. and cells, into electrical signals and vice versa. However, the difference in the physical nature of soft biological elements and rigid electronic materials calls for new conductive or electroactive materials with added biomimetic properties that can bridge the gap. Soft electronics that utilize organic materials, such as conjugated polymers, can bring many important features to bioelectronics. Among the many advantages of conjugated polymers, the ability to modulate the biocompatibility, solubility, functionality, and mechanical properties through side chain engineering can alleviate the issues of mechanical mismatch and provide better interface between the electronics and biological elements. Additionally, conjugated polymers, being both ionically and electrically conductive through reversible doping processes provide means for direct sensing and stimulation of biological processes in cells, tissues, and organs. In this Account, we focus on our recent progress in molecular engineering of conjugated polymers with tunable biomimetic properties, such as biocompatibility, responsiveness, stretchability, self-healing, and adhesion. Our approach is general and versatile, which is based on functionalization of conjugated polymers with long side chains, commonly polymeric or biomolecules. Applications for such materials are wide-ranging, where we have demonstrated conductive, stimuli-responsive antifouling, and cell adhesive biointerfaces that can respond to external stimuli such as temperature, salt concentration, and redox reactions, the processes that in turn modify and reversibly switch the surface properties. Furthermore, utilizing the advantageous chemical, physical, mechanical and functional properties of the grafts, we progressed into grafting of the long side chains onto conjugated polymers in solution, with the vision of synthesizing solution-processable conjugated graft copolymers with biomimetic functionalities. Examples of the developed materials to date include rubbery and adhesive photoluminescent plastics, biomolecule-functionalized electrospun biosensors, thermally and dually responsive photoluminescent conjugated polymers, and tunable self-healing, adhesive, and stretchable strain sensors, advanced functional biocidal polymers, and filtration membranes. As outlined in these examples, the applications of these biomimetic, conjugated polymers are still in the development stage toward truly printable, organic bioelectronic devices. However, in this Account, we advocate that molecular engineering of conjugated polymers is an attractive approach to a versatile class of organic electronics with both ionic and electrical conductivity as well as mechanical properties required for next-generation bioelectronics.
生物电子学领域涉及生物学和人造电子学之间引人入胜的相互作用。组织工程、生物传感、药物输送和可穿戴电子等应用需要仿生材料,这些材料可以将生物系统(如器官、组织和细胞)的生理和化学过程转化为电信号,反之亦然。然而,软生物元件和硬电子材料在物理性质上的差异要求具有附加仿生特性的新型导电或电活性材料来弥合这一差距。利用有机材料(如共轭聚合物)的软电子产品可为生物电子学带来许多重要特性。在共轭聚合物的众多优势中,通过侧链工程调节生物相容性、溶解性、功能性和机械性能的能力可以缓解机械不匹配问题,并为电子元件和生物元件之间提供更好的接口。此外,共轭聚合物通过可逆掺杂过程同时具有离子和导电性,为直接感应和刺激细胞、组织和器官中的生物过程提供了手段。在本报告中,我们专注于我们在具有可调仿生特性的共轭聚合物的分子工程方面的最新进展,例如生物相容性、响应性、可拉伸性、自修复和附着力。我们的方法是通用和多功能的,它基于长侧链的共轭聚合物功能化,通常是聚合物或生物分子。此类材料的应用范围广泛,我们已经展示了导电、刺激响应性抗污和细胞粘附生物界面,它们可以对外界刺激(如温度、盐浓度和氧化还原反应)做出响应,这些过程反过来又可以改变和可逆切换表面特性。此外,利用接枝物的有利化学、物理、机械和功能特性,我们将长侧链接枝到溶液中的共轭聚合物上,以期合成具有仿生功能的溶液加工型共轭接枝共聚物。迄今为止开发的材料的示例包括橡胶状和粘性光致发光塑料、生物分子功能化的静电纺丝生物传感器、热和双重响应光致发光共轭聚合物以及可调自修复、粘性和可拉伸应变传感器、先进的功能性杀菌聚合物和过滤膜。如这些示例所示,这些仿生共轭聚合物的应用仍处于向真正可打印的有机生物电子设备发展的阶段。然而,在本报告中,我们主张共轭聚合物的分子工程是一类具有离子和导电性以及下一代生物电子学所需机械性能的多功能有机电子学的有吸引力的方法。