Department of Chemistry, University of California, Irvine, California 92697-2025, United States.
School of Chemical Engineering, Sungkyunkwan University, Suwon, Gyeonggi-do 16419, South Korea.
Anal Chem. 2022 Sep 6;94(35):12167-12175. doi: 10.1021/acs.analchem.2c02606. Epub 2022 Aug 24.
pH sensors that are nanoscopic in all three dimensions are fabricated within a single gold nanowire. Fabrication involves the formation of a nanogap within the nanowire via electromigration, followed by electropolymerization of pH-responsive poly(aniline) (PANI) that fills the nanogap forming the nanojunction. All fabrication steps are performed using wet chemical methods that do not require a clean room. The measured electrical impedance of the PANI nanojunction is correlated with pH from 2.0 to 9.0 with a response time of 30 s. Larger, micrometer-scale PANI junctions exhibit a slower response. The measured pH is weakly influenced by the salt concentration of the contacting aqueous solution. An impedance measurement at two frequencies (300 kHz and 1.0 Hz) enables estimation of the salt concentration and correction of the measured pH value, preserving the accuracy of the pH measurement across the entire calibration curve for salt concentrations up to 1.0 M. The result is a nanoscopic pH sensor with pH sensing performance approaching that of a conventional, macroscopic pH glass-membrane electrode.
在单个金纳米线内制造出在所有三个维度上均为纳米级的 pH 传感器。制造过程涉及通过电迁移在纳米线内形成纳米间隙,然后电聚合填充纳米间隙形成纳米结的 pH 响应型聚(苯胺)(PANI)。所有制造步骤均使用无需洁净室的湿法化学方法进行。测量到的 PANI 纳米结的电阻抗与 pH 值从 2.0 到 9.0 相关,响应时间为 30 秒。更大的、微米级的 PANI 结表现出较慢的响应。测量到的 pH 值受接触水溶液盐浓度的弱影响。在两个频率(300 kHz 和 1.0 Hz)下进行阻抗测量,可估计盐浓度并校正测量的 pH 值,在整个盐浓度校准曲线范围内保持 pH 测量的准确性,直至 1.0 M。结果是一种纳米级 pH 传感器,其 pH 传感性能接近传统的宏观 pH 玻璃膜电极。