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用于聚合物功能化碳纳米管基化学电阻式甲烷传感器的连续流动化学与贝叶斯优化

Continuous Flow Chemistry and Bayesian Optimization for Polymer-Functionalized Carbon Nanotube-Based Chemiresistive Methane Sensors.

作者信息

Dunlap John H, Feng Haosheng, Pioch Thomas, Volk Amanda A, Giordano Andrea N, Reidell Alexander, Tran Ly D, Hampton Cheri M, Luo Shao-Xiong Lennon, Rao Rahul, Crouse Christopher A, Swager Timothy M, Baldwin Luke A

机构信息

Materials and Manufacturing Directorate, Air Force Research Laboratory, Wright-Patterson AFB, Ohio 45433, United States.

BlueHalo, Dayton, Ohio 45432, United States.

出版信息

ACS Appl Mater Interfaces. 2024 Dec 11;16(49):68181-68196. doi: 10.1021/acsami.4c14279. Epub 2024 Nov 26.

Abstract

We report the preparation of poly(ionic) polymer-wrapped single-walled carbon nanotube dispersions for chemiresistive methane (CH) sensors with improved humidity tolerance. Single-walled CNTs (SWCNTs) were noncovalently functionalized by poly(4-vinylpyridine) (P4VP) with varied amounts of a poly(ethylene glycol) (PEG) moiety bearing a Br and terminal azide group (Br-R). The quaternization of P4VP with Br-R was performed using continuous flow chemistry and Bayesian optimization-guided reaction selection. Polymers (PyBrR) with different degrees of functionalization were used to disperse SWCNTs and subsequently incorporated into sensors containing a platinum complex as an aerobic oxidative catalyst with a polyoxometalate (POM) redox mediator to facilitate room-temperature CH sensing. As the degree of quaternization in the PyBrR-CNT composites increased, improvements in response magnitude were observed, with nominally 10% quaternized PyBrR giving the largest response. Incorporation of PEG improved sensor stability at relative humidities between 57-90% versus sensors fabricated from CNT dispersions with unfunctionalized P4VP. Devices fabricated with these dispersions outperformed those prepared in situ under dry conditions, and exhibited greater stability at elevated humidities. The influence of Keggin-type POM character was also evaluated to identify alternative POMs for enhanced sensor performance at high humidity. In an effort to identify areas for further improvement in algorithm performance for polymer functionalization, a kinetically informed machine learning model was explored as a route to predict reactivity of pyridine units and alkyl bromides under flow conditions.

摘要

我们报告了用于具有改善湿度耐受性的化学电阻式甲烷(CH)传感器的聚(离子)聚合物包裹的单壁碳纳米管分散体的制备。单壁碳纳米管(SWCNTs)通过带有不同量的带有Br和末端叠氮基(Br-R)的聚(乙二醇)(PEG)部分的聚(4-乙烯基吡啶)(P4VP)进行非共价功能化。使用连续流动化学和贝叶斯优化引导的反应选择进行P4VP与Br-R的季铵化。使用不同功能化程度的聚合物(PyBrR)来分散SWCNTs,随后将其掺入包含铂络合物作为需氧氧化催化剂和多金属氧酸盐(POM)氧化还原介质的传感器中,以促进室温下的CH传感。随着PyBrR-CNT复合材料中季铵化程度的增加,观察到响应幅度有所改善,名义上10%季铵化的PyBrR给出了最大响应。与由未功能化P4VP的CNT分散体制备的传感器相比,PEG的加入提高了传感器在57-90%相对湿度下的稳定性。用这些分散体制备的器件优于在干燥条件下原位制备的器件,并且在高湿度下表现出更高的稳定性。还评估了Keggin型POM特性的影响,以确定在高湿度下增强传感器性能的替代POM。为了确定聚合物功能化算法性能的进一步改进领域,探索了一种动力学信息机器学习模型,作为预测流动条件下吡啶单元和烷基溴反应性的途径。

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