Enhancing the sensitivity of 3D printed sensors via ironing and void reduction
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[1] G. D. Goh,et al. A 3D Printing‐Enabled Artificially Innervated Smart Soft Gripper with Variable Joint Stiffness , 2023, Advanced Materials Technologies.
[2] A. Zolfagharian,et al. Soft pneumatic actuators with integrated resistive sensors enabled by multi-material 3D printing , 2023, The International Journal of Advanced Manufacturing Technology.
[3] D. Bourell,et al. 3D printed optics and photonics: Processes, materials and applications , 2023, Materials Today.
[4] G. Wolterink,et al. Novel 3D printed capacitive shear stress sensor , 2023, Additive Manufacturing.
[5] J. Slavič,et al. Manufacturing of single-process 3D-printed piezoelectric sensors with electromagnetic protection using thermoplastic material extrusion , 2023, Additive Manufacturing.
[6] R. Baughman,et al. SoJel –A 3D printed jellyfish-like robot using soft materials for underwater applications , 2023, Ocean Engineering.
[7] Z. Saadatnia,et al. Facile Material Extrusion of 3D Wearable Conductive-Polymer Micro-Super-Capacitors , 2023, Additive Manufacturing.
[8] Qinglei Ji,et al. Design and calibration of 3D printed soft deformation sensors for soft actuator control , 2023, Mechatronics.
[9] A. Sanchez-Herencia,et al. Material thermal extrusion of conductive 3D electrodes using highly loaded graphene and graphite colloidal feedstock , 2023, Additive Manufacturing.
[10] Y. Koutsawa,et al. Methods for embedding fiber Bragg grating sensors during material extrusion: relationship between the interfacial bonding and strain transfer , 2023, Additive Manufacturing.
[11] Yonas Tadesse,et al. Additive Manufacturing for Bioinspired Structures: Experimental Study to Improve the Multimaterial Adhesion Between Soft and Stiff Materials. , 2023, 3D printing and additive manufacturing.
[12] Daoheng Sun,et al. A magnetic soft robot with multimodal sensing capability by multimaterial direct ink writing , 2023, Additive Manufacturing.
[13] Anahita Emami,et al. Carbon-Based Piezoresistive Polymer Nanocomposites by Extrusion Additive Manufacturing: Process, Material Design, and Current Progress , 2022, 3D Printing and Additive Manufacturing.
[14] D. Coker,et al. Creating Tougher Interfaces via Suture Morphology in 3D-Printed Multi-material Polymer Composites by Fused Filament Fabrication , 2022, Additive Manufacturing.
[15] Douglas E. Smith,et al. Effect of Process Parameters on Void Distribution, Volume Fraction, and Sphericity within the Bead Microstructure of Large-Area Additive Manufacturing Polymer Composites , 2022, Polymers.
[16] M. Cianchetti,et al. One-shot additive manufacturing of robotic finger with embedded sensing and actuation , 2022, The International Journal of Advanced Manufacturing Technology.
[17] D. B. Pedersen,et al. Conductive Compliant Mechanisms: Geometric Tuning of 3d Printed Flexural Sensors , 2022, SSRN Electronic Journal.
[18] D. Campolo,et al. 3D printing of soft sensors for soft gripper applications , 2022, Materials Today: Proceedings.
[19] F. Attivissimo,et al. Additive Manufacturing for Sensors: Piezoresistive Strain Gauge with Temperature Compensation , 2022, Applied Sciences.
[20] Zafer Kazancı,et al. Energy Absorption Enhancement of Additively Manufactured Hexagonal and Re-Entrant (Auxetic) Lattice Structures by Using Multi-Material Reinforcements , 2022, SSRN Electronic Journal.
[21] M. Słoma,et al. Influence of Process Parameters on the Resistivity of 3D Printed Electrically Conductive Structures , 2022, Micromachines.
[22] Jorge A. Cardenas,et al. Direct Electroless Plating of Conductive Thermoplastics for Selective Metallization of 3D Printed Parts , 2022, Additive Manufacturing.
[23] Fuzhen Xuan,et al. Strain sensing behavior of FDM 3D printed carbon black filled TPU with periodic configurations and flexible substrates , 2022, Journal of Manufacturing Processes.
[24] A. Jain,et al. Modeling the Effect of In Situ Nozzle-Integrated Compression Rolling on the Void Reduction and Filaments-Filament Adhesion in Fused Filament Fabrication (FFF) , 2022 .
[25] Eric A. Yttri,et al. Recent Advances in 3D Printing of Biomedical Sensing Devices , 2021, Advanced functional materials.
[26] J. Slavič,et al. Single-process fused filament fabrication 3d-printed high-sensitivity dynamic piezoelectric sensor , 2021, Additive Manufacturing.
[27] J. Slavič,et al. Single-process 3D-printed structures with vibration durability self-awareness , 2021, Additive Manufacturing.
[28] W. Yeong,et al. 3D Printing of Multilayered and Multimaterial Electronics: A Review , 2021, Advanced Electronic Materials.
[29] D. Espalin,et al. Additive manufacturing of multimaterial and multifunctional structures via ultrasonic embedding of continuous carbon fiber , 2021, Composites Part C: Open Access.
[30] B. Vanderborght,et al. A Sensorized Soft Pneumatic Actuator Fabricated with Extrusion-Based Additive Manufacturing , 2021, Actuators.
[31] Choon Chiang Foo,et al. 3D Printed Metamaterial Capacitive Sensing Array for Universal Jamming Gripper and Human Joint Wearables , 2021, Advanced Engineering Materials.
[32] G. Alici,et al. A Review of 3D‐Printable Soft Pneumatic Actuators and Sensors: Research Challenges and Opportunities , 2021, Adv. Intell. Syst..
[33] P. Breedveld,et al. Design of non-assembly mechanisms: A state-of-the-art review , 2021 .
[34] Zafer Kazancı,et al. Analysis of additively manufactured (3D printed) dual-material auxetic structures under compression , 2020 .
[35] H. Low,et al. Multi-materials fused filament printing with embedded highly conductive suspended structures for compressive sensing , 2020 .
[36] J. Slavič,et al. Experimental identification of the dynamic piezoresistivity of fused-filament-fabricated structures , 2020 .
[37] A. Di Nisio,et al. Fused filament fabrication of commercial conductive filaments: experimental study on the process parameters aimed at the minimization, repeatability and thermal characterization of electrical resistance , 2020, The International Journal of Advanced Manufacturing Technology.
[38] D. Kazmer,et al. Prediction of interlayer strength in material extrusion additive manufacturing , 2020 .
[39] Z. You,et al. Large deformation and energy absorption of additively manufactured auxetic materials and structures: A review , 2020 .
[40] Abbas Z. Kouzani,et al. 3D/4D-printed bending-type soft pneumatic actuators: fabrication, modelling, and control , 2020, Virtual and Physical Prototyping.
[41] Changki Mo,et al. 3D printed conductive thermoplastic polyurethane/carbon nanotube composites for capacitive and piezoresistive sensing in soft pneumatic actuators , 2020 .
[42] Janko Slavic,et al. Process Parameters for FFF 3D-Printed Conductors for Applications in Sensors , 2020, Sensors.
[43] G. Cheng,et al. Highly sensitive flexible piezoresistive sensor with 3D conductive network. , 2020, ACS applied materials & interfaces.
[44] Chun H. Wang,et al. Direct 3D Printing of Highly Anisotropic, Flexible, Constriction-Resistive Sensors for Multidirectional Proprioception in Soft Robots. , 2020, ACS applied materials & interfaces.
[45] D. Xiang,et al. Enhanced performance of 3D printed highly elastic strain sensors of carbon nanotube/thermoplastic polyurethane nanocomposites via non-covalent interactions , 2019, Composites Part B: Engineering.
[46] Jae-Won Choi,et al. Multi-material 3D printing of a soft pressure sensor , 2019, Additive Manufacturing.
[47] Gerald Pinter,et al. Inter-layer bonding characterisation between materials with different degrees of stiffness processed by fused filament fabrication , 2019, Additive Manufacturing.
[48] Filippo Cianetti,et al. Dynamic Measurements Using FDM 3D-Printed Embedded Strain Sensors , 2019, Sensors.
[49] M. Bordegoni,et al. The influence of slicing parameters on the multi-material adhesion mechanisms of FDM printed parts: an exploratory study , 2019, Virtual and Physical Prototyping.
[50] Michaela Gkantou,et al. Embedded Smart Antenna for Non-Destructive Testing and Evaluation (NDT&E) of Moisture Content and Deterioration in Concrete , 2019, Sensors.
[51] J. Christ,et al. Bidirectional and Stretchable Piezoresistive Sensors Enabled by Multimaterial 3D Printing of Carbon Nanotube/Thermoplastic Polyurethane Nanocomposites , 2018, Polymers.
[52] Seok‐In Na,et al. Direct 3D Printing of Graphene Nanoplatelet/Silver Nanoparticle‐Based Nanocomposites for Multiaxial Piezoresistive Sensor Applications , 2018, Advanced Materials Technologies.
[53] A. Skalski,et al. Heterophase materials for fused filament fabrication of structural electronics , 2018, Journal of Materials Science: Materials in Electronics.
[54] O. S. Carneiro,et al. Multi-material 3D printing: The relevance of materials affinity on the boundary interface performance , 2018, Additive Manufacturing.
[55] Hong Yee Low,et al. Embedded electrical tracks in 3D printed objects by fused filament fabrication of highly conductive composites , 2018, Additive Manufacturing.
[56] Jianzhong Fu,et al. Interfacial bonding during multi-material fused deposition modeling (FDM) process due to inter-molecular diffusion , 2018, Materials & Design.
[57] Yonas Tadesse,et al. Investigation of polylactide and carbon nanocomposite filament for 3D printing , 2018, Progress in Additive Manufacturing.
[58] Juan Sebastian Cuellar,et al. Additive manufacturing of non-assembly mechanisms , 2018 .
[59] L. Weiss,et al. Temperature-dependent electrical resistance of conductive polylactic acid filament for fused deposition modeling , 2018, The International Journal of Advanced Manufacturing Technology.
[60] Gijsbertus J.M. Krijnen,et al. Embedded sensing: Integrating sensors in 3-D printed structures , 2018 .
[61] Yingtian Li,et al. Novel Variable-Stiffness Robotic Fingers with Built-In Position Feedback. , 2017, Soft robotics.
[62] Nahal Aliheidari,et al. 3D printed highly elastic strain sensors of multiwalled carbon nanotube/thermoplastic polyurethane nanocomposites , 2017 .
[63] Ryan Wicker,et al. Multiprocess 3D printing for increasing component functionality , 2016, Science.
[64] David A. Hutchins,et al. A Simple, Low-Cost Conductive Composite Material for 3D Printing of Electronic Sensors , 2012, PloS one.
[65] S. Hoa,et al. Temperature dependent electrical conductivity of CNT–PEEK composites , 2011 .
[66] P. Gilormini,et al. A review on the Mullins effect , 2009 .