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通过非共价超分子“手铐”将胶体在 Au 基底上进行位点选择性固定。

Site-selective immobilization of colloids on Au substrates via a noncovalent supramolecular "handcuff".

机构信息

Melville Laboratory for Polymer Synthesis, Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, United Kingdom.

出版信息

Langmuir. 2010 Apr 20;26(8):5323-8. doi: 10.1021/la9033386.

Abstract

We have examined hierarchical supramolecular structure in the formation of colloidal arrays by immobilizing monodispersed naphthalene-functionalized colloids onto Au substrates bearing viologen moieties using the macrocyclic host molecule cucurbit[8]uril as a supramolecular "handcuff". Naphthalene-functionalized poly(methyl methacrylate)- and polystyrene-based colloids were synthesized by soap-free emulsion polymerization and characterized by dynamic light scattering and scanning electron microscopy to realize the colloidal arrays and to facilitate direct macroscopic imaging. The formation of host-stabilized ternary complexes on the surface of naphthalene-functionalized microspheres in colloidal suspension was verified by titration of a preformed viologen-CB[8] complex and followed by zeta potential measurements. Patterned self-assembled monolayers of a viologen derivative on Au substrates were formed by backfilling viologen-modified thiols after spontaneous chemisorption of "protective" alkylthiols by microcontact printing. After the initial complexation of CB[8] onto the viologen derivative on the Au substrates, monolayers of colloids with both 1D and 2D patterns could be formed and characterized by contact angle measurement, optical microscopy, and scanning electron microscopy. Control experiments indicated that no colloids were attached to the Au substrate after moderate washing by water if (1) CB[8] was replaced by a smaller analogue of the macrocyclic host, CB[6] or CB[7], (2) colloids without naphthalene-functionalities on the periphery were employed, or (3) alkanethiol was used entirely instead of viologenthiol to protect the Au substrate. These results suggest that the supramolecular ternary complexes were key to successfully bind the colloids onto the Au substrates with the CB[8] acts as a supramolecular "handcuff". The fundamental expertise gained from the study of these materials is believed to facilitate progress in the field of smart materials and wet nanotechnology and lead to the preparation of controlled reversible architectures on surfaces.

摘要

我们通过使用大环主体分子葫芦脲 [8] 作为超分子“手铐”,将单分散萘功能化胶体固定在带有紫罗碱部分的 Au 基底上,研究了胶体阵列形成中的分层超分子结构。通过无皂乳液聚合合成了萘功能化的聚甲基丙烯酸甲酯和聚苯乙烯基胶体,并通过动态光散射和扫描电子显微镜进行了表征,以实现胶体阵列并便于直接宏观成像。通过滴定预先形成的紫罗碱-CB[8] 配合物并随后进行 ζ 电位测量,验证了在胶体悬浮液中萘功能化微球表面上形成主体稳定的三元配合物。通过微接触印刷在 Au 基底上形成紫罗碱衍生物的图案化自组装单层,然后通过回填充修饰有巯基的紫罗碱来实现。在 CB[8] 初始络合到 Au 基底上的紫罗碱衍生物上之后,可以形成具有 1D 和 2D 图案的胶体单层,并通过接触角测量、光学显微镜和扫描电子显微镜进行表征。对照实验表明,如果(1)用大环主体的较小类似物 CB[6] 或 CB[7] 代替 CB[8],(2)使用没有萘功能的胶体,或(3)完全用烷硫醇代替紫罗碱硫醇来保护 Au 基底,则在适度用水洗涤后,没有胶体附着在 Au 基底上。这些结果表明,超分子三元配合物是将胶体成功键合到 Au 基底上的关键,其中 CB[8] 作为超分子“手铐”。从这些材料的研究中获得的基本专业知识有望促进智能材料和湿纳米技术领域的进展,并导致在表面上制备可控的可逆结构。

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