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February 19, 2026Angewandte Chemie1 citations

The Precise Modulation of Probe Effective Charges by Debye Length for Enhancing Performance of Aptamer–FET Biosensors

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ZZZhi ZhengHZHeng ZhangNZNing Zhou

Key Points

  • The study investigates how modulating Debye length affects aptamer probe charges and sensor performance.
  • Systematic investigation of Debye length effects on aptamer probes
  • Measurement of effective charge before and after target binding
  • Evaluation of detection ranges for serotonin and dopamine
  • Analysis of signal-on and signal-off mechanisms in biosensors
  • Optimum sensor performance achieved at minimum Debye length for charge differences
  • Linear detection range from 10 fM to 1.0 nM for biomolecules
  • Ultra-low limit of detection below 10 fM
  • Improved detection of dopamine secretion from living PC12 cells

Abstract

ABSTRACT Field–effect transistor (FET) biosensors have garnered significant interests in disease diagnosis. The electrostatic interaction between channel materials and probes/targets is important to the performance. However, the modulation of electrostatic interaction is difficult because it was severely attenuated in real environment, which is common in practical bioanalytical detection. With small size, aptamer possesses programmable base composition, which is unlimited by the binding sites. Herein, we systematically investigate the precise modulation of Debye length (λ D ) on the effective charge quantity of aptamer probe to regulate electrostatic interaction. We discovered that the performance achieves the optimum due to the largest quantity difference of aptamer probe effective charges when λ D approaches the minimum between aptamer probe lengths before and after binding with targets. This precise modulation is highly effective for both signal–on and signal–off detection of biomolecules such as serotonin and dopamine, exhibiting a wide linear detection range, spanning from 10 fM to 1.0 nM (10 5 ), and an ultra–low limit of detection (<10 fM). Importantly, this precise modulation exhibits practical detection improvement of dopamine secretion from living PC12 cells. Our findings provide a pioneering guideline for enhancing performance of aptamer–FET biosensors and offer in–depth understanding of probe molecular structure.

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Cite This Study

Zheng et al. (2026) studied this question.

synapsesocial.com/papers/6996a7e3ecb39a600b3edf70https://doi.org/10.1002/ange.202519635
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