Key Laboratory of Environmental Medicine Engineering, Ministry of Education, Jiangsu Engineering Laboratory of Smart Carbon-Rich Materials and Device, School of Chemistry and Chemical Engineering, Southeast University , Nanjing 211189, China.
Key Laboratory of Bioinspired Smart Interface Sciences, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences , Beijing, 100190, China.
J Am Chem Soc. 2017 Aug 2;139(30):10441-10446. doi: 10.1021/jacs.7b05249. Epub 2017 Jul 13.
The low solubility of gases in aqueous solution is the major kinetic limitation of reactions that involve gases. To address this challenge, we report a nanochannel reactor with joint gas-solid-liquid interfaces and controlled wettability. As a proof of concept, a porous anodic alumina (PAA) nanochannel membrane with different wettability is used for glucose oxidase (GOx) immobilization, which contacts with glucose aqueous solution on one side, while the other side gets in touch with the gas phase directly. Interestingly, it is observed that the O could participate in the enzymatic reaction directly from gas phase through the proposed nanochannels, and a hydrophobic interface is more favorable for the enzymatic reaction due to the rearrangement of GOx structure as well as the high gas adhesion. As a result, the catalytic efficiency of GOx in the proposed interface is increased up to 80-fold compared with that of the free state in traditional aqueous air-saturated electrolyte. This triphase interface with controlled wettability can be generally applied to immobilize enzymes or catalysts with gas substrates for high efficiency.
气体在水溶液中的低溶解度是涉及气体的反应的主要动力学限制。为了解决这一挑战,我们报告了一种具有联合气-固-液界面和可控润湿性的纳米通道反应器。作为概念验证,使用具有不同润湿性的多孔阳极氧化铝(PAA)纳米通道膜进行葡萄糖氧化酶(GOx)固定化,其一侧与葡萄糖水溶液接触,另一侧直接与气相接触。有趣的是,观察到 O 可以通过所提出的纳米通道直接从气相参与酶反应,由于 GOx 结构的重排以及高气附着力,疏水性界面更有利于酶反应。结果,与传统水饱和电解质中的游离状态相比,GOx 在该界面中的催化效率提高了 80 倍。这种具有可控润湿性的三相界面可以普遍应用于固定化具有气相底物的酶或催化剂,以提高效率。