A single screen-printable multifunctional active ink platform based on tin cobalt oxide decorated carbon nanofibers for energy storage and sensing applications

This study emphasises the formulation of a single screen-printable multifunctional active ink platform. This formulated conductive ink simplifies the fabrication of three distinct microelectronic devices: micro-supercapacitors, humidity sensors, and electrochemical sensors. The conductive ink platform was developed by combining pseudocapacitive spinel SnCo 2 O 4 with conductive carbon nanofibers (CNF). The screen-printed SnCo 2 O 4 /CNF (SC-3) micro-supercapacitor electrode revealed both pseudocapacitive and EDLC charge-storage mechanisms. This electrode demonstrated outstanding performance for microscale energy applications with an areal capacitance of 673.8 ± 3.1 mF cm − 2 (SC-3), an energy density of 93.58 ± 1.5 µWh cm − 2 and a power density of 1.353 ± 3.0 mW cm − 2 ( n = 3, RSD < 1%). In conjunction with microsupercapacitors, this conductive ink presents remarkable potential for sensing applications. The developed humidity sensor exhibits excellent stability, fast response/recovery times (38/56 s), a low hysteresis (1.46%) and a wide detection range (11–97%). In an electrochemical sensor, the modified SC-3/SPE exhibited excellent electrochemical behaviour for the detection of Naproxen. The SC-3/SPE sensor has a wide drug concentration range of 1 µM to 500 µM. The long-term stability of the sensor implies efficient naproxen measurement in tablet and synthetic urine samples, with an RSD of 3.53% (± 0.72). The interplay between the CNF framework and redox-active SnCo 2 O 4 contributes to improvement in a conductive ink platform. This current work tackles the shortcomings of conventional standalone energy storage and sensing devices. The results highlight the introduction of a scalable, affordable, multifunctional conductive ink formulation for next-generation miniaturised microelectronics.

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Journal
Advanced Composites and Hybrid Materials
Published
2026-09-11
DOI
https://doi.org/10.1007/s42114-026-02070-5
Primary Topic
Nanomaterials and Printing Technologies
Type
article
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A single screen-printable multifunctional active ink platform based on tin cobalt oxide decorated carbon nanofibers for energy storage and sensing applications

Ramakrishna Nayak, M. Selvakumar, Shilpa Shetty, Mohammad Saquib
Advanced Composites and Hybrid Materials
Nanomaterials and Printing Technologies
article

A single screen-printable multifunctional active ink platform based on tin cobalt oxide decorated carbon nanofibers for energy storage and sensing applications

Ramakrishna Nayak, M. Selvakumar, Shilpa Shetty, Mohammad Saquib
article en

Abstract

This study emphasises the formulation of a single screen-printable multifunctional active ink platform. This formulated conductive ink simplifies the fabrication of three distinct microelectronic devices: micro-supercapacitors, humidity sensors, and electrochemical sensors. The conductive ink platform was developed by combining pseudocapacitive spinel SnCo 2 O 4 with conductive carbon nanofibers (CNF). The screen-printed SnCo 2 O 4 /CNF (SC-3) micro-supercapacitor electrode revealed both pseudocapacitive and EDLC charge-storage mechanisms. This electrode demonstrated outstanding performance for microscale energy applications with an areal capacitance of 673.8 ± 3.1 mF cm − 2 (SC-3), an energy density of 93.58 ± 1.5 µWh cm − 2 and a power density of 1.353 ± 3.0 mW cm − 2 ( n = 3, RSD < 1%). In conjunction with microsupercapacitors, this conductive ink presents remarkable potential for sensing applications. The developed humidity sensor exhibits excellent stability, fast response/recovery times (38/56 s), a low hysteresis (1.46%) and a wide detection range (11–97%). In an electrochemical sensor, the modified SC-3/SPE exhibited excellent electrochemical behaviour for the detection of Naproxen. The SC-3/SPE sensor has a wide drug concentration range of 1 µM to 500 µM. The long-term stability of the sensor implies efficient naproxen measurement in tablet and synthetic urine samples, with an RSD of 3.53% (± 0.72). The interplay between the CNF framework and redox-active SnCo 2 O 4 contributes to improvement in a conductive ink platform. This current work tackles the shortcomings of conventional standalone energy storage and sensing devices. The results highlight the introduction of a scalable, affordable, multifunctional conductive ink formulation for next-generation miniaturised microelectronics.

Advanced Composites and Hybrid Materials
Manipal Academy of Higher Education (IN)
Affordable and clean energy
Openalex Percentile: Top 21%
Nanomaterials and Printing Technologies
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A single screen-printable multifunctional active ink platform based on tin cobalt oxide decorated carbon nanofibers for energy storage and sensing applications — Ramakrishna Nayak, M. Selvakumar, et al. · Advanced Composites and Hybrid Materials (2026) | TGRS Research Map | TGRS