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CapSense-Flex: A Self-Powered Capillary Lab-on-Chip for Universal Electrochemical Biosensing

delete2026-04-06
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PRE
AI
K
Kirankumar Kuruvinashetti
B
Bahareh Babamiri
A
Azam Zare
A
Atousa Parsaei
M
Mahmood Khalghollah
M
Mohsen Hassani
J
Justin W. Young
S
Seyedeh Zeinab Mousavisani
M
Mehdi Mohammadi
A
Amir Sanati‐Nezhad *
A
Amin Komeili *
DOI:10.1021/acssensors.5c04346delete
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Abstract

Abstract

En 中文
Capillary microfluidics offer an attractive route to pump-free point-of-care (POC) diagnostics, yet most existing platforms remain constrained by continuous flow, short residence times (<2 min), and mandatory wash cycles that prevent integration with many affinity-based assays. We present CapSense-Flex, a laser-cut, roll-to-roll-manufacturable capillary chip that enables wash-free, diffusion-dominated molecular sensing with programmable incubation windows of 6−30 min, matching the binding kinetics required for molecularly imprinted polymer (MIP)-based electrochemical detection. The platform autonomously transports ≤25 μL of sweat, saliva, plasma, or whole blood without pumps, valves, or user actuation, achieving fluid-front arrival times within <5% of finite-element transport predictions while preventing bubble formation via fiber-assisted wicking. Embedded with a cortisol-selective MIP electrode, CapSense-Flex provides log-linear quantification in buffer (PBS) and human saliva from 1 to 1000 ng mL−1 (R2 = 0.9835), a 0.1 ng mL−1 limit of detection, an imprinting factor of ≈5.0, and <3.1% RSD (n = 5). The sensor retained an ∼90% signal after 60 days at 4 °C and directly quantified cortisol in unprocessed saliva samples (1.6−5.0 ng mL−1) with <12% signal loss relative to PBS standards. Each capillary chip is fabricated in <7 min at <$0.40 material cost and supports plug-and-replace electrode modules for alternative MIP targets. By decoupling capillary transport from binding kinetics and eliminating external pumps or wash steps, CapSense-Flex establishes a universal architecture for scalable MIP-based biosensing across handheld, wearable, and decentralized diagnostic formats.
Keywords:
Anatomy
Biotechnology
Electrodes
Fluid dynamics
Sensors
capillary microfluidics
molecularly imprinted polymers
point-of-care biosensing
electrochemical impedance spectroscopy
wearable diagnostics

Journal

ACS Sensors cover
ACS Sensors
IF:
9.1
Papers:
976
Citations:
2.6W

Organization

U
university of calgary
Scholars:
5.1K
Papers: 2.2K
Citations: 0