Difference between revisions of "Published Papers"

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(DIW/SEP/SSE, 2024)
(Count)
 
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== Count ==
 
== Count ==
  
520 documents as of 8 April, 2024.
+
529 documents as of 2 May, 2024.
  
 
== '''Non-Traditional Manufacturing''' ==
 
== '''Non-Traditional Manufacturing''' ==
  
 
Including:  
 
Including:  
* Antennas
+
* Antennas, Sensors, Batteries, Inductors, and Circuits
* Sensors
 
* Inductors
 
* Circuits
 
 
* Electro-Spinning  
 
* Electro-Spinning  
 
* Electro-Melt-Spinning
 
* Electro-Melt-Spinning
 
* Melt Electro-Writing (MEW)
 
* Melt Electro-Writing (MEW)
 +
* Multiphase Direct Ink Writing (MDIW)
 
* 4D Printing
 
* 4D Printing
 
* Shape Memory Polymers
 
* Shape Memory Polymers
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== NTM, 2024 ==
 
== NTM, 2024 ==
  
 +
* [https://iopscience.iop.org/article/10.1149/1945-7111/ad3f53/pdf ARJUNA: An Electrochemical Interface Mapping Probe for Solid-State Batteries] by a team from [https://www.ornl.gov/eeid Electrification & Energy Infrastructure Division, Oak Ridge National Laboratory]
 +
* [https://www.sciencedirect.com/science/article/abs/pii/S0956566324003075 Recent Advances in Implantable Sensors and Electronics Using Printable Materials for Advanced Healthcare] by a team from [http://uga.edu Georgia Tech], [https://plus.cnu.ac.kr/html/en/ Chungnam National University], [https://www.tacoma.uw.edu/ University of Washington Tacoma], and [https://med.emory.edu/ Emory University School of Medicine]
 +
* [https://www.pharmaexcipients.com/wp-content/uploads/2024/04/Pediatric-Formulations-Developed-by-Extrusion-Based-3D-Printing.pdf Pediatric Formulations Developed by Extrusion-Based 3D Printing: From Past Discoveries to Future Prospects], results compiled by a team from [https://www.cnrs.fr/en Centre National de la Recherche Scientifique et Technologique (CRNF)] and [https://www.delpharm.com/en/ Delpharm, France]
 +
* [https://chemrxiv.org/engage/chemrxiv/article-details/661d52d591aefa6ce19d3886 3D Printing Carbon-Carbon Composites With Multilayered Architecture for Enhanced Multifunctional Properties] by a team from [https://www.asu.edu/ Arizona State University], [https://www.cnrs.fr/en Centre National de la Recherche Scientifique et Technologique (CRNF)], [https://www.tamu.edu Texas A&M University], and [https://www.uga.edu/ University of Georgia]
 
* [https://pubs.acs.org/doi/full/10.1021/acsomega.4c01171 Direct Ink Writing of Strained Carbon Nanotube-Based Sensors: Toward 4D Printable Soft Robotics] by a team from [https://cemse.kaust.edu.sa/ SAMA Laboratories, Electrical and Computer Engineering, Computer Electrical Mathematical Science and Engineering Division, King Abdullah University of Science and Technology (KAUST)] and [https://ee.kfupm.edu.sa/ Electrical Engineering, King Fahd University of Petroleum and Minerals (KFUPM)]
 
* [https://pubs.acs.org/doi/full/10.1021/acsomega.4c01171 Direct Ink Writing of Strained Carbon Nanotube-Based Sensors: Toward 4D Printable Soft Robotics] by a team from [https://cemse.kaust.edu.sa/ SAMA Laboratories, Electrical and Computer Engineering, Computer Electrical Mathematical Science and Engineering Division, King Abdullah University of Science and Technology (KAUST)] and [https://ee.kfupm.edu.sa/ Electrical Engineering, King Fahd University of Petroleum and Minerals (KFUPM)]
 
* [https://www.spiedigitallibrary.org/conference-proceedings-of-spie/12907/1290704/Liquid-crystal-elastomer-soft-robotic-arm-for-pick-and-place/10.1117/12.3000162.short#_=_ Liquid Crystal Elastomer Soft Robotic Arm for Pick-and-place Operation Controlled by Light] by a team from [https://www.tue.nl/en/ Technische Universiteit Eindhoven]
 
* [https://www.spiedigitallibrary.org/conference-proceedings-of-spie/12907/1290704/Liquid-crystal-elastomer-soft-robotic-arm-for-pick-and-place/10.1117/12.3000162.short#_=_ Liquid Crystal Elastomer Soft Robotic Arm for Pick-and-place Operation Controlled by Light] by a team from [https://www.tue.nl/en/ Technische Universiteit Eindhoven]
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== DIW/SEP/SSE, 2024 ==
 
== DIW/SEP/SSE, 2024 ==
  
 +
* [https://pubs.acs.org/doi/full/10.1021/acsami.4c02466 Enhancing Electrical Conductivity of Stretchable Liquid Metal–Silver Composites through Direct Ink Writing] by a team from the [https://bartlett.me.vt.edu/ Mechanical Engineering, Soft Materials and Structures Lab, Virginia Tech]
 +
* [https://www.sciencedirect.com/science/article/abs/pii/S0141813024026461 Design and in Vitro Evaluation of Curcumin-loaded Plga Nanoparticle Embedded Sodium Alginate/gelatin 3D Printed Scaffolds for Alzheimer's Disease] by a team from [https://www.marmara.edu.tr/en Marmara University], [https://www.ucl.ac.uk/ University College London], [https://www.cubeincubation.com/en/our-initiatives Cube Incubation, Turkey], [Istanbul Kent University Istanbul Kent University], [https://www.cumhuriyet.edu.tr/ Cumhuriyet University], [University of Health Science and Pharmacy in St. Louis University of Health Science and Pharmacy in St. Louis], and [https://www.ua.pt/en/ University of Aveiro]
 +
* [http://ysjskxygc.xml-journal.net/en/article/pdf/preview/10.13264/j.cnki.ysjskx.2024.01.010.pdf Rheological Properties of SiC Suspension for Direct Ink Writing] by a team from [https://en.csu.edu.cn/ Central South University, China]
 +
* [https://pubs.acs.org/doi/abs/10.1021/acsabm.3c01088 Enhancing Extracellular Electron Transfer of a 3D-Printed Shewanella Bioanode with Riboflavin-Modified Carbon Black Bioink] by a team from [https://www.zju.edu.cn/english/ Zhejiang University, China]
 
* [https://www.nature.com/articles/s41467-024-47452-9 Vapor-induced Phase-separation-enabled Versatile Direct Ink Writing] by a team from [https://www.ufl.edu/ University of Florida], [https://sc.edu/ University of South Carolina], and [https://www.zju.edu.cn/english/ Zhejiang University, China]
 
* [https://www.nature.com/articles/s41467-024-47452-9 Vapor-induced Phase-separation-enabled Versatile Direct Ink Writing] by a team from [https://www.ufl.edu/ University of Florida], [https://sc.edu/ University of South Carolina], and [https://www.zju.edu.cn/english/ Zhejiang University, China]
 
* [https://www.sciencedirect.com/science/article/abs/pii/S0955221924003121 3D-Printed Photocatalytic Scaffolds of BiVO4 by Direct Ink Writing for Acetaminophen Mineralization] by a team from [https://cimav.edu.mx/investigacion/subsede-monterrey/ Centro de Investigación en Materiales Avanzados S.C. (CIMAV-Subsede Monterrey), Mexico], Nano & Micro Additive Manufacturing of Polymers and Composite Materials Laboratory ‘‘3D LAB’’. Advanced Functional Materials & Nanotechnology Group, and [https://www.uanl.mx/dependencias/facultad-de-ingenieria-mecanica-y-electrica/ Universidad Autónoma de Nuevo León, Facultad de Ingeniería Mecánica y Eléctrica, San Nicolás de los Garza, Nuevo León, Mexico]
 
* [https://www.sciencedirect.com/science/article/abs/pii/S0955221924003121 3D-Printed Photocatalytic Scaffolds of BiVO4 by Direct Ink Writing for Acetaminophen Mineralization] by a team from [https://cimav.edu.mx/investigacion/subsede-monterrey/ Centro de Investigación en Materiales Avanzados S.C. (CIMAV-Subsede Monterrey), Mexico], Nano & Micro Additive Manufacturing of Polymers and Composite Materials Laboratory ‘‘3D LAB’’. Advanced Functional Materials & Nanotechnology Group, and [https://www.uanl.mx/dependencias/facultad-de-ingenieria-mecanica-y-electrica/ Universidad Autónoma de Nuevo León, Facultad de Ingeniería Mecánica y Eléctrica, San Nicolás de los Garza, Nuevo León, Mexico]

Latest revision as of 15:03, 2 May 2024

Below is a list of published works citing Hyrel equipment.

Count

529 documents as of 2 May, 2024.

Non-Traditional Manufacturing

Including:

  • Antennas, Sensors, Batteries, Inductors, and Circuits
  • Electro-Spinning
  • Electro-Melt-Spinning
  • Melt Electro-Writing (MEW)
  • Multiphase Direct Ink Writing (MDIW)
  • 4D Printing
  • Shape Memory Polymers
  • Nanostructures
  • Micro-Encapsulated Phase-Changing Materials (MEPCM)
  • Printing with Embedded Fibers
  • And combining two or more additive manufacturing methods in a single build.

NTM, 2024

NTM, 2023

NTM, 2022

NTM, 2021

NTM, 2020

NTM, 2019

NTM, 2018

NTM, 2017

NTM, 2016

NTM, 2015

Unheated or Chilled Reservoir Printing

Also known as Robocasting or DIW (Direct Ink Writing), SEP (Semisolid Extrusion Printing), SSE (Semisolid Extrusion). 3DCP' (3D Concrete Printing), or DCC (Digital Concrete Construction).

DIW/SEP/SSE, 2024

DIW/SEP/SSE, 2023

DIW/SEP/SSE, 2022

DIW/SEP/SSE, 2021

DIW/SEP/SSE, 2020

DIW/SEP/SSE, 2019

DIW/SEP/SSE, 2018

DIW/SEP/SSE, 2017

DIW/SEP/SSE, 2016

DIW/SEP/SSE, 2015

DIW/SEP/SSE, 2014

Heated Reservoir Printing

Also known as DPE (Direct Powder Extrusion) or HME (Hot Melt Extrusion).

DPE, HME 2024

DPE, HME 2023

DPE, HME 2022

DPE, HME 2021

DPE, HME 2020

DPE, HME 2019

DPE, HME 2018

DPE, HME 2017

Filament Printing

Also known as FFF (Fused Filament Fabrication) or FDM (Fused Deposition Modeling).

FDM/HFF, 2024

FDM/HFF, 2023

FDM/HFF, 2022

FDM/HFF, 2021

FDM/HFF, 2020

FDM/HFF, 2019

FDM/HFF, 2018

FDM/HFF, 2017

FDM/HFF, 2016