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Improved detection limits for phthalates by selective solid-phase micro-extraction.

, , , , , , and . ICST, page 733-738. IEEE, (2015)

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Smart Sensing System for Early Detection of Bone Loss: Current Status and Future Possibilities., , , and . J. Sens. Actuator Networks, 7 (1): 10 (2018)Multifunctional Flexible Sensor Based on Laser-Induced Graphene., , , , , , , , and . Sensors, 19 (16): 3477 (2019)Development of a sensing system to detect C-telopeptide of type-I collagen., , , , , and . ICST, page 586-590. IEEE, (2015)Molecularly Imprinted Polymer-Based Electrochemical Biosensor for Bone Loss Detection., , and . IEEE Trans. Biomed. Eng., 65 (6): 1264-1271 (2018)IoT-Based Laser-Inscribed Sensors for Detection of Sulfate in Water Bodies., , , , , , , and . IEEE Access, (2020)Development of the selectivity of nitrate sensors based on ion imprinted polymerization technique., , , and . ICST, page 1-6. IEEE, (2017)Recent Advancements in Graphene-Based Implantable Electrodes for Neural Recording/Stimulation., , , , , and . Sensors, 23 (24): 9911 (December 2023)A novel electrochemical biosensor for bone turnover detection based on molecular imprinting technology., , , and . ICST, page 1-6. IEEE, (2017)Improved detection limits for phthalates by selective solid-phase micro-extraction., , , , , , and . ICST, page 733-738. IEEE, (2015)Electrochemical Biosensor: Point-of-Care for Early Detection of Bone Loss, , and . Springer, (2019)