On-Skin Wearable Health Monitoring Devices: Recent Trends and Perspectives
Abstract
1. Introduction
2. Sensors
2.1. Temperature Sensors

2.2. Electrophysiological Sensors
2.3. Sweat Sensors

2.4. Challenges and Future Directions
3. Processing and Communication Units
- Size: Device size is often the most significant constraint, as it directly impacts on the available space for the energy storage element (e.g., battery or supercapacitor). In some cases, the design may even be limited to battery-less implementations relying on energy-harvesting techniques.
- Sensors output: The processing unit must support the specific interfaces required to read sensor outputs. Most modern integrated circuits (ICs) incorporate a microcontroller unit (MCU) with analog and digital peripherals, including ADCs digital-to-analog converters (DACs), and communication interfaces such as I2C and SPI for connecting external analog front-end (AFE) systems. These features simplify the integration of complex sensing applications, such as ECG or electrochemical biosensors requiring signal conditioning.
- Data transfer rate: Different applications demand both different sampling and data transfer rates. For instance, a temperature or glucose monitoring application requires low sampling and data transfer rates, resulting in minimal power consumption. In contrast, ECG or EMG monitoring requires high sampling rates and rapid data transmission, increasing both processing load and energy consumption. It is also important to consider whether the application requires real-time processing to implement medical alerts or critical condition monitoring. Ultimately, the variable to be monitored and how the data is transmitted to external devices is strongly related to power consumption and communication protocol used by the WHMD.
- Communication scenario: The communication scenario defines the area that should cover the communication of the WHMD, or the devices the WHMD must be compatible with. If data is transmitted to a nearby smartphone or hub in a continuous way, Bluetooth Low Energy (BLE) can be considered. If only eventual non-periodic measurements are required, Near Field Communication (NFC) could be enough. Alternatively, Low Power Wide Area Network (LPWAN) using the standard cellular network may be required in cases of remote monitoring applications.
Challenges and Future Directions
4. Antennas
| Protocol | Antenna Type | Frequency Band | Design Considerations | Examples |
|---|---|---|---|---|
| NFC | Planar coil Loop antenna | HF (13.56 MHz) | Magnetic coupling, designed for short range (<4 cm), easy integration into flexible substrates. | Adapted from [83] |
| RFID | Planar coil, Dipole | LF (125–134 kHz) HF (13.56 MHz) UHF (860–960 MHz) | HF coils for short-range inductive coupling, UHF dipoles enable longer ranges but difficult miniaturization. | Adapted from [84] |
| UWB | Planar monopole, Slot antenna | 3.1–10.6 GHz | High precision for positioning, they can be miniaturized and are stable under bending, low interference with body tissues. | ![]() Adapted from [85] |
| BLE | Planar monopole, Chip, Planar Inverted-F Antenna (PIFA) | 2.4 GHz ISM | Compact and lightweight, stable radiation efficiency, often require ground isolation or detuning-mitigation techniques to reduce absorption. | ![]() PIFA ![]() Adapted from [86,87] |
| WiFi | 2.4 GHz ISM 5 GHz | |||
| LTE-M | Monopole, PIFA, patch, multiband antennas | Cellular LTE/GSM | Designed for reliable long-range communication, multiband operation, difficult to tune. | ![]() Adapted from [88,89] |
| NB-IoT |
5. Power Systems
5.1. Energy-Storage Devices

5.2. Energy-Harvesting Systems
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Core Element | Current State (High-TRL Technologies) | Key Challenges | Emerging Solutions | Long-Term Vision |
|---|---|---|---|---|
| Sensors | - Ag/AgCl wet electrodes. - Resistive temperature sensors (RTD/NTC). - Commercial invasive sensors (e.g., glucose). - Screen-printed carbon electrodes. | - Long-term skin adhesion and breathability. - Nanomaterial biocompatibility under long-term use. - Sweat matrix variability and biorecognition-layer degradation. | - Conductive and bio-adhesive hydrogels. - Multimodal sensor fusion. - ML-based drift compensation. - Integrated iontophoresis + microfluidic platforms. | Seamlessly skin-integrated, multimodal, self-calibrating sensors with clinically validated long-term biocompatibility. |
| Processing & Communication | - BLE/NFC/5G SoCs. - Potentiostat ICs. - Dedicated AFEs. | - Data-volume vs. power-budget trade-off. - On-device processing vs. transmission energy balance. - Data security/privacy. - Mechanical mismatch between rigid ICs and soft substrates. | - Event-driven, context-aware architectures. - Lightweight edge-AI models. - Hardware security modules and PSA-certified MCUs. - Island-bridge/serpentine/liquid-metal interconnects. | Intelligent, secure, information-centric (rather than data-centric) systems built on intrinsically flexible electronics. |
| Antennas | Flexible multi-band antennas | - Body-induced detuning and SAR/regulatory compliance. - Mechanical deformation affecting radiation performance. - Multi-protocol electromagnetic coexistence. - End-of-life recyclability. | - Reconfigurable antennas. - Antenna-system co-design methodologies. - Environmentally friendly conductive materials and additive manufacturing. | Co-designed, regulation-compliant, multi-protocol antenna ecosystems robust to body and mechanical variability. |
| Power Systems | - Li-Po/Li-ion batteries. - NFC/RFID-based harvest-use PMUs. - Commercial tiny PV cells. | - Battery flammability, disposal, and carbon footprint. - Low and intermittent EH power density. - PMU cold-start limitations. - Rigidity vs. skin conformability. | - Solid-state batteries. - Hydrogel-electrolyte flexible supercapacitors. - Piezoelectric/triboelectric/thermoelectric/RF/enzymatic-biofuel-cell harvesting. - Hybrid battery-supercapacitor-EH architectures. | Fully self-powered, skin-conformable hybrid power systems with minimal battery dependence. |
| Sustainability (cross-cutting) | - Biodegradable substrates. - Early-stage recyclable conductive inks. | - Non-recyclable ICs, batteries, and antennas embedded within biodegradable substrates. - Lack of global end-of-life strategies. | - Modular/disassemblable architectures. - Circular-electronics design principles. - Component recovery and reuse pathways. | Fully circular, life-cycle-optimized WHMDs with minimal environmental footprint. |
| Clinical Translation (cross-cutting) | Individual components validation, but few fully integrated systems clinically validated or regulatory-cleared. | - Standardized performance benchmarking. - Long-term validation across diverse populations. - FDA/CE-MDR regulatory pathways. | - Early integration of regulatory requirements into the design cycle. - Closer engineer-clinician-regulator collaboration. | Clinically validated, regulatory-cleared WHMDs deployed at TRL 8–9 in real-world applications. |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Romero, F.J.; Blasco-Pascual, I.; Salinas-Castillo, A.; Rodríguez, N.; Morales, D.P. On-Skin Wearable Health Monitoring Devices: Recent Trends and Perspectives. Sensors 2026, 26, 5770. https://doi.org/10.3390/s26185770
Romero FJ, Blasco-Pascual I, Salinas-Castillo A, Rodríguez N, Morales DP. On-Skin Wearable Health Monitoring Devices: Recent Trends and Perspectives. Sensors. 2026; 26(18):5770. https://doi.org/10.3390/s26185770
Chicago/Turabian StyleRomero, Francisco J., Isabel Blasco-Pascual, Alfonso Salinas-Castillo, Noel Rodríguez, and Diego P. Morales. 2026. "On-Skin Wearable Health Monitoring Devices: Recent Trends and Perspectives" Sensors 26, no. 18: 5770. https://doi.org/10.3390/s26185770
APA StyleRomero, F. J., Blasco-Pascual, I., Salinas-Castillo, A., Rodríguez, N., & Morales, D. P. (2026). On-Skin Wearable Health Monitoring Devices: Recent Trends and Perspectives. Sensors, 26(18), 5770. https://doi.org/10.3390/s26185770







