Kosuke Minami
(National Institute for Materials Science
)
;
Kota Shiba
(National Institute for Materials Science
)
;
Genki Yoshikawa
(National Institute for Materials Science
)
説明:
(abstract)Nanomechanical sensors and their arrays have been attracting significant attention for detecting, distinguishing, and identifying target analytes. In the static mode operation, sensing signals are obtained by a concentration-dependent sorption-induced mechanical strain/stress. The analytical models for the static mode nanomechanical sensing with viscoelastic receptor layers have been proposed, while they are not formulated for practical conditions, such as multistep injection–purge cycles. Here, we derive an analytical model of viscoelastic material-based nanomechanical sensing by extending the theoretical model via solving differential equations with recurrence relations. The presented model is capable of reproducing the transient behaviors observed in the experimental signal responses with multistep injection- purge cycles, including drifts and/or changes in the baseline. Moreover, this model can be utilized for extracting viscoelastic properties of the receptor material/analyte pairs as well as the concentrations of analytes accurately by fitting a couple of injection–purge curves obtained from the experimental data. The parameters of the model that best fit the data can be used for predicting the entire signal response.
権利情報:
キーワード: nanomechanical sensors, sorption kinetics
刊行年月日: 2021-03-28
出版者: AIP Publishing
掲載誌:
研究助成金:
原稿種別: 出版者版 (Version of record)
MDR DOI:
公開URL: https://doi.org/10.1063/5.0039045
関連資料:
その他の識別子:
連絡先:
更新時刻: 2024-01-05 22:14:01 +0900
MDRでの公開時刻: 2023-07-25 13:55:29 +0900
| ファイル名 | サイズ | |||
|---|---|---|---|---|
| ファイル名 |
JApplPhys_2021-129-124503.pdf
(サムネイル)
application/pdf |
サイズ | 3.73MB | 詳細 |