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利用生物分子定制氮化镓半导体表面。

Tailoring GaN semiconductor surfaces with biomolecules.

作者信息

Estephan Elias, Larroque Christian, Cuisinier Frédéric J G, Bálint Zoltán, Gergely Csilla

机构信息

Groupe d'Etude des Semi-conducteurs, UMR 5650, CNRS-Universite Montpellier II, 34095 Montpellier Cedex 5, France.

出版信息

J Phys Chem B. 2008 Jul 24;112(29):8799-805. doi: 10.1021/jp804112y. Epub 2008 Jun 26.

DOI:10.1021/jp804112y
PMID:18582017
Abstract

Functionalization of semiconductors constitutes a crucial step in using these materials for various electronic, photonic, biomedical, and sensing applications. Within the various possible approaches, selection of material-binding biomolecules from a random biological library, based on the natural recognition of proteins or peptides toward specific material, offers many advantages, most notably biocompatibility. Here we report on the selective functionalization of GaN, an important semiconductor that has found broad uses in the past decade due to its efficient electroluminescence and pronounced chemical stability. A 12-mer peptide ("GaN_probe") with specific recognition for GaN has evolved. The subtle interplay of mostly nonpolar hydrophobic and some polar amino acidic residues defines the high affinity adhesion properties of the peptide. The interaction forces between the peptide and GaN are quantified, and the hydrophobic domain of the GaN_probe is identified as primordial for the binding specificity. These nanosized binding blocks are further used for controlled placement of biotin-streptavidin complexes on the GaN surface. Thus, the controlled grow of a new, patterned inorganic-organic hybrid material is achieved. Tailoring of GaN by biological molecules can lead to a new class of nanostructured semiconductor-based devices.

摘要

半导体功能化是将这些材料用于各种电子、光子、生物医学和传感应用的关键步骤。在各种可能的方法中,基于蛋白质或肽对特定材料的天然识别,从随机生物文库中选择与材料结合的生物分子具有诸多优势,其中最显著的是生物相容性。在此,我们报告了氮化镓(GaN)的选择性功能化,GaN是一种重要的半导体,在过去十年中因其高效的电致发光和显著的化学稳定性而得到广泛应用。一种对GaN具有特异性识别能力的12肽(“GaN_probe”)已被研发出来。主要由非极性疏水氨基酸残基和一些极性氨基酸残基之间的微妙相互作用决定了该肽的高亲和力粘附特性。对该肽与GaN之间的相互作用力进行了量化,并确定GaN_probe的疏水结构域是结合特异性的关键因素。这些纳米级结合模块进一步用于在GaN表面可控地放置生物素 - 链霉亲和素复合物。因此,实现了一种新型图案化无机 - 有机杂化材料的可控生长。通过生物分子对GaN进行定制可导致一类新型的基于纳米结构半导体的器件。

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