A Comprehensive Review of Floor-Integrated Triboelectric Nanogenerators from Different Perspectives
Highlights
- A comprehensive classification of floor-integrated triboelectric nanogenerators is presented, correlating material systems, operating modes, electrical output, and application scenarios.
- A novel FKM–NBR-based triboelectric floor module is experimentally validated, demonstrating stable voltage and current outputs with clear frequency- and position-dependent behavior.
- A maximum power generation of 4 W/m2 was obtained.
- The comparative analysis provides practical design guidelines for selecting materials and architectures in scalable, durable, and application-oriented triboelectric floors.
- The proposed elastomer-based floor module highlights the feasibility of modular triboelectric flooring for both energy harvesting and self-powered sensing in smart buildings.
Abstract
1. Introduction
- (a)
- Self-powered sensors
- (b)
- Energy harvesting for storage and utilization
2. Different Materials Used in Triboelectric Floors Reported in Literature
2.1. Metallic and Porous-Based Triboelectric Floors
2.2. Cellulose- and Wood-Based Triboelectric Floors
2.3. Polymer-Based Composites Triboelectric Floors
2.4. Cement-Based and Composite Triboelectric Floors
3. Different TENG Floors According to Environmental, Recyclability and Cost Factors
3.1. Humidity Resistance or Flammability
3.2. Renewability, Biodegradability or Recyclability
3.3. Low Cost
4. Applications
4.1. Electrical Energy Harvesting
4.2. Mechanical Disturbance Detection
4.2.1. Sports
4.2.2. Smart Home
4.2.3. Healthcare
5. A High Electrical Efficiency Triboelectric Floor
5.1. Voltage Output Characteristics
5.2. Current Output Characteristics
5.3. Discussion
6. Conclusions and Future Perspectives
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| TENG Name | Tribopositive Material | Tribonegative Material | Output Performance | Surface Contact Area | Power Density | Frequency, Force and Load | Other Parameters | Ref. |
|---|---|---|---|---|---|---|---|---|
| Multifunctional PMNF-based | PMNF | PDMS | VOC = 187.8 V ISC = 71.9 μA P = 9.3 mW S = 0.66 mW/Hz | 50 × 50 mm = 25 cm2 | 3.7 W/m2 | 13.9 Hz, 3 MΩ | Conducting foam (Ni) + PDMS (colloidal + elastomer) | [33] |
| CNF-based TENG | CNFs | FEP | VOC = 32.8 V ISC = 35 μA P = 0.56 mW | 40 cm2 | −0.14 W/m2 * | -, -, 1 MΩ | [34] | |
| SF-TENG | Mode I: Al Mode II: Rubber (Ex: shoe soles) | Mode I: PTFE Mode II: Wood | I: VOC = 364 ± 43 V; ISC = 9 ± 1 μA S = 109.2 μW/Hz II: VOC = 238 ± 17 V; ISC = 2.4 ± 0.3 μA | 80 × 80 mm = 64 cm2 195 × 167 mm ≈ 326 cm2 | −18.2 mW/m2 17.5 mW/m2 | 30 Hz | Mode I: C-S Mode II: Sliding | [35] |
| FS-TENG | Rubber (Ex: latex) | PVC | VOC = 180 V ISC = 7.5 μA | 16 cm2 | 0.76 W/m2 | 5 Hz, 210 N, 30 MΩ | [36] | |
| EMG-TENG | Al | Kapton + MoS2 | TENG: VOC = 350–500 V; ISC = 20–38 μA EMG-TENG: VOC = 1200 V; ISC = 5 mA; P = 6 W. | TENG: 203.2 × 63.5 mm ≈ 129 cm2 | E-T: 465 W/m2 * | TENG: 63.5 kg, 2 Hz E-T: Hands tapping | EMG-TENG: Nd12Fe14B magnets, Cu coils | [37] |
| W-TENG | Pine wood | PTFE | VOC = 220 ± 20 V ISC = 5.8 ± 0.5 μA | 64 cm2 | 158.2 mW/m2 | 2 Hz, 50 MΩ | velocity of 0.352 m/s | [38] |
| u-TENG | Cu | PTFE | VOC = 86 V ISC = 10.8 μA P = 0.279 mW S = 0.056 mW/Hz | - | - | 5 Hz, 500 N, 300 MΩ | [39] | |
| FW-TENG | 20 ZIF-8 @ spruce wood | PDMS @ spruce wood | VOC = 24.3 V ISC = 0.32 μA P = 7.3 mW | 35 × 20 mm = 7 cm2 | 10.4 mW/m2 | 50 N, 300 MΩ | [40] | |
| MMP-TENG | Nylon6 | C/PVDF | VOC = 0.7 V ISC = 6 μA | 60 × 30 × 0.3 mm3 | 197 μW/m2 | 2.8 N, 100 Ω, 7 Hz | [41] | |
| W-TENG | O2 plasma-treated wood | C4F8 + O2 plasma-treated wood | VOC = 227 V ISC = 4.8 µA | 100 × 80 mm = 8 cm2 | 18.86 mW/m2 | 180 N, 120 MΩ | [42] | |
| Self-heating floor | Kapton | FEP | VOC = 240 V ISC = 550 nA | 100 × 100 mm = 10 cm2 | - | [43] | ||
| TEHFT | Al | PTFE | VOC = 120.78 V ISC = 109.80 μA P = 13.26 mW | 300 × 300 mm = 900 cm2 | 0.15 W/m2 * | 60 kg, 2 Hz, 1.1 MΩ | [44] | |
| CS-SP TENG | CS composites + Super P® carbon black | PTFE | Vpp= 110 V Ipp= 9.8 µA | 16 cm2 | 2.13 W/m2 | 10 N, 5 Hz, 1 MΩ | [45] |
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Paramio Martínez, S.; Luo, Q.; Hermida-Merino, C.; Benavides, J.E.P.; Sánchez del Río, J.; Wang, D.-Y. A Comprehensive Review of Floor-Integrated Triboelectric Nanogenerators from Different Perspectives. Sensors 2026, 26, 2061. https://doi.org/10.3390/s26072061
Paramio Martínez S, Luo Q, Hermida-Merino C, Benavides JEP, Sánchez del Río J, Wang D-Y. A Comprehensive Review of Floor-Integrated Triboelectric Nanogenerators from Different Perspectives. Sensors. 2026; 26(7):2061. https://doi.org/10.3390/s26072061
Chicago/Turabian StyleParamio Martínez, Sofía, Qin Luo, Carolina Hermida-Merino, Jorge Edison Pozo Benavides, José Sánchez del Río, and De-Yi Wang. 2026. "A Comprehensive Review of Floor-Integrated Triboelectric Nanogenerators from Different Perspectives" Sensors 26, no. 7: 2061. https://doi.org/10.3390/s26072061
APA StyleParamio Martínez, S., Luo, Q., Hermida-Merino, C., Benavides, J. E. P., Sánchez del Río, J., & Wang, D.-Y. (2026). A Comprehensive Review of Floor-Integrated Triboelectric Nanogenerators from Different Perspectives. Sensors, 26(7), 2061. https://doi.org/10.3390/s26072061

