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Publications

[2]
R. Nasiri et al., "Electrochemical dual-sensing of lactate and glucose using NiO nanoparticles with cross-sensitivity calibration," Talanta : The International Journal of Pure and Applied Analytical Chemistry, vol. 297, 2026.
[4]
J. C. Varela et al., "Flow Cytometer In-a-Fiber – detection and analysis of µm-size particles," in Optical Fibers and Sensors for Medical Diagnostics, Treatment, and Environmental Applications XXVI, 2026.
[5]
P. Karapapa et al., "From CO2 to C1 Liquid Fuels : Molecular Electrochemical Production of Formic Acid and Methanol," Angewandte Chemie International Edition, vol. 65, no. 2, 2026.
[9]
L. N. Zamproni et al., "Modeling the effects of radiation on neurogenesis using an in vitro neurogenic niche approach," Lab on a Chip, vol. 26, no. 1, pp. 193-210, 2026.
[10]
I. Company-Garrido et al., "Myosin II regulates cellular thermo-adaptability and the efficiency of immune responses," Developmental Cell, vol. 61, no. 2, 2026.
[11]
L. M. Minarro et al., "Non-Fickian diffusion within assemblies of the intrinsically disordered protein β-casein," Proceedings of the National Academy of Sciences of the United States of America, vol. 123, no. 11, 2026.
[12]
A. E. Avila Ramirez et al., "PEDOT:PSS-A Key Material for Bioelectronics," Advanced Science, vol. 13, no. 11, 2026.
[15]
[17]
[18]
S. Tanriverdi, "High-Throughput Manipulation of Micro- and Nanoparticles Using Elasto-Inertial Microfluidics for Environmental and Biomedical Applications," Doctoral thesis : KTH Royal Institute of Technology, TRITA-CBH-FOU, 2025:1, 2025.
[20]
J. Lumpuy-Castillo et al., "Inkjet-Printed Graphene Multielectrode Arrays : An Accessible Platform for In Vitro Cardiac Electrophysiology," ACS Applied Bio Materials, vol. 8, no. 5, pp. 3708-3716, 2025.
[21]
X. Tian et al., "Integrated microoptical system for continuous fluorescence monitoring of microtissues," Microsystems & Nanoengineering, vol. 11, no. 1, 2025.
[22]
J. C. Varela et al., "Lab-in-a-Fiber detection and capture of cells," Scientific Reports, vol. 15, no. 1, 2025.
[24]
C. V. Leva et al., "Localized Nanopore Fabrication in Silicon Nitride Membranes by Femtosecond Laser Exposure and Subsequent Controlled Breakdown," ACS Applied Materials and Interfaces, vol. 17, no. 5, pp. 8737-8748, 2025.
[25]
A. E. Avila Ramirez et al., "Microfabricated Organic Electrochemical Transistors Enabled by Printing and Laser Ablation," ACS Applied Materials and Interfaces, vol. 17, no. 47, pp. 64783-64795, 2025.
[26]
[27]
J. Jessika et al., "Multimodal confocal Raman microscopy and fluorescence imaging for in situ characterisation of polymer-based drug delivery systems," in Gordon Research Conference (GRC) on Biomaterials and Tissue Engineering July 27 - August 1, 2025, Barcelona, Spain, 2025.
[31]
F. De Ferrari et al., "Sub-5 nm Silicon Nanopore Sensors : Scalable Fabrication via Self-Limiting Metal-Assisted Chemical Etching," ACS Applied Materials and Interfaces, vol. 17, no. 6, pp. 9047-9058, 2025.
[33]
J. Shakya et al., "2D MXene electrochemical transistors," Nanoscale, vol. 16, no. 6, pp. 2883-2893, 2024.
[35]
M. Costa, "Acoustofluidics for Micro and Nanoplastics Enrichment towards Environmental and Drinking Water Monitoring : A Story of Sound and Soul," Doctoral thesis : KTH Royal Institute of Technology, TRITA-CBH-FOU, 2024:55, 2024.
[36]
[38]
M. Costa et al., "EchoGrid : High-Throughput Acoustic Trapping for Enrichment of Environmental Microplastics," Analytical Chemistry, vol. 96, no. 23, pp. 9493-9502, 2024.
[40]
S. Tanriverdi et al., "Elasto-inertial focusing and particle migration in high aspect ratio microchannels for high-throughput separation," Microsystems and Nanoengineering, vol. 10, no. 1, 2024.
[41]
S. N. Raja et al., "Electromigrated Gold Nanogap Tunnel Junction Arrays: Fabrication and Electrical Behavior in Liquid and Gaseous Media," ACS Applied Materials and Interfaces, vol. 16, no. 28, pp. 37131-37146, 2024.
[42]
R. Habibey et al., "Engineered modular neuronal networks-on-chip represent structure-function relationship," Biosensors & bioelectronics, vol. 261, 2024.
[43]
D. R. Reyes et al., "From animal testing to in vitro systems: advancing standardization in microphysiological systems," Lab on a Chip, vol. 24, no. 5, pp. 1076-1087, 2024.
[45]
[46]
J. Rogal et al., "Human In Vitro Models of Neuroenergetics and Neurometabolic Disturbances: Current Advances and Clinical Perspectives," Stem Cells Translational Medicine, vol. 13, no. 6, pp. 505-514, 2024.
[47]
S. Buchmann et al., "In Situ Functionalization of Polar Polythiophene-Based Organic Electrochemical Transistor to Interface In Vitro Models," ACS Applied Materials and Interfaces, vol. 16, no. 40, pp. 54292-54303, 2024.
[48]
I. F. Pinto, V. Chotteau and A. Russom, "Microfluidic Cartridge for Bead-Based Affinity Assays," Methods in Molecular Biology, vol. 2804, pp. 127-138, 2024.
[49]
R. Nasiri, Y. Zhu and N. R. de Barros, "Microfluidics and Organ-on-a-Chip for Disease Modeling and Drug Screening," Biosensors, vol. 14, no. 2, 2024.