Difference between revisions of "Published Papers (DIW)"

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== Count ==
 
== Count ==
  
685 total documents as of 8 December, 2025.
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707 total documents as of 17 February, 2026.
  
 
== '''[[Reservoir_Heads|Unheated or Chilled Reservoir Printing]]''' ==
 
== '''[[Reservoir_Heads|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).
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Also known as '''Robocasting''' or '''DIW''' (Direct Ink Writing), '''VIPS-DIW''' (Vapor-Induced Phase-Separation Direct Ink Writing), '''SEP''' (Semisolid Extrusion Printing), '''SSE''' (Semisolid Extrusion). '''3DCP''' (3D Concrete Printing), or '''DCC''' (Digital Concrete Construction).
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== DIW/SEP/SSE, 2026 ==
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* [https://www.researchgate.net/profile/Koshovyi-Oleh/publication/400707991_Formulation_and_evaluation_of_semi-solid_extrusion_SSE_3D-printed_drug_preparations_using_poloxamers_and_polyethylene_oxide_as_co-printed_carrier_polymers/links/6990398064ca8a38208cec29/Formulation-and-evaluation-of-semi-solid-extrusion-SSE-3D-printed-drug-preparations-using-poloxamers-and-polyethylene-oxide-as-co-printed-carrier-polymers.pdf Formulation and Evaluation of Semi-solid Extrusion (SSE) 3D-printed Drug Preparations Using Poloxamers and Polyethylene Oxide as Co-printed Carrier Polymers] by a team from [https://ut.ee/en University of Tartu]'s [https://ut.ee/en/contact/institute-pharmacy Institute of Pharmacy] and [https://omi.ut.ee/en Institute of Ecology and Earth Sciences]
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* [https://assets-eu.researchsquare.com/files/rs-8651682/v1/71e68e5f-62be-4762-995f-54b6573a8659.pdf?c=1770116728 Effect of 3-D Printing on Mechanical Properties of Poly(vinyl alcohol) based Algal Biopolymer Composites] by a team from [https://www.iitkgp.ac.in/ Indian Institute of Technology, Kharagpur]
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* [https://advanced.onlinelibrary.wiley.com/doi/pdfdirect/10.1002/adma.72447 Liquids as Reinforcements for Anisotropic and Tough Soft Matter Composites] by a team from [https://bartlett.me.vt.edu/ Mechanical Engineering, Soft Materials and Structures Lab, Virginia Tech] and [https://www.unl.edu/ University of Nebraska–Lincoln]'s [https://smr.unl.edu/ Smart Materials & Robotics Lab] and [https://engineering.unl.edu/ece/ Electrical & Computer Engineering Department]
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* [https://chemrxiv.org/doi/pdf/10.26434/chemrxiv.10001975/v1 Additive Manufacturing of Metabolically Active Living Materials with Physicochemical Biocontainment] by a team from [https://taltech.ee/en/department-chemistry-biotechnology/division-of-of-chemistry Department of Chemistry and Biotechnology, Tallinn University of Technology] and [https://chem.washington.edu/ Department of Chemistry, University of Washington]
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* [https://onlinelibrary.wiley.com/doi/pdf/10.1002/app.70442 Optimization in 3D Printable Silicone DIW Ink Formulations: Gelling Behavior Control and the Use of Carbon Nanotubes] by a team from [https://case.edu/ Case Western Reserve University], [https://www.ndsu.edu/ North Dakota State University], [https://www.utk.edu/ University of Tennessee, Knoxville], and [https://www.ornl.gov/facility/cnms Center for Nanophase Materials and Sciences, Oak Ridge National Laboratory]
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* [https://www.sciencedirect.com/science/article/abs/pii/S0272884226002567 Rheology and Printability of a Highly Loaded Silicon Nitride Colloidal Ink for Hierarchically Porous Ceramic Fabrication via Direct Ink Writing] by a team from [https://www.iitbhu.ac.in/ Indian Institute of Technology (B.H.U), Varanasi]
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* [https://www.researchsquare.com/article/rs-8272336/v1 Spatially-resolved Humidity Sensing by Capacitive-CMOS Arrays] by a team from [https://uni-freiburg.de/en/ University of Freiburg, Germany], [https://www.tudelft.nl/en/ Delft University of Technology (TU Delft)], and [https://www.nxp.com/ NXP Semiconductors, Netherlands]
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* [https://www.researchgate.net/profile/Carolina-Herrera-Lavados/publication/399742613_Stability_printability_and_postprocessing_of_low_oil_emulsion_gels_for_3D_printing_Effect_of_guar_gum_locust_bean_gum_and_oil_concentration/links/6969130eee048155cffc1133/Stability-printability-and-postprocessing-of-low-oil-emulsion-gels-for-3D-printing-Effect-of-guar-gum-locust-bean-gum-and-oil-concentration.pdf Stability, Printability, and Postprocessing of Low Oil Emulsion Gels for 3D Printing: Effect of Guar Gum, Locust Bean Gum, and Oil Concentration]  by a team from [https://www.ubiobio.cl/ Universidad del Bío-Bío Chile]
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* [https://www.nature.com/articles/s44334-025-00060-x#author-information Effect of Carbon Fiber Reinforcement and Sintering Temperature on Mechanical Properties, Thermal Shock Resistance, and Oxidation Behavior of Zirconium Diboride Formed via Material Extrusion Additive Manufacturing] by a team from [https://www.afrl.af.mil/RX/ Air Force Research Laboratory, Materials and Manufacturing Directorate], [https://www.avinc.com/ AV Inc., Dayton, OH], [https://www.nationalacademies.org/programs/PGA-FP-18-P-27 National Academy of Sciences Air Force Science & Technology Fellowship Program, Washington, DC], and [https://www.soche.org/ SOCHE, Dayton, OH]
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* [https://www.sciencedirect.com/science/article/pii/S2772502226000302 Stability, Printability, and Postprocessing of Low Oil Emulsion Gels for 3D Printing: Effect of Guar Gum, Locust Bean Gum, and Oil Concentration] by a team from [https://www.ubiobio.cl/ Universidad del Bío-Bío Chile]
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* [https://www.sciencedirect.com/science/article/pii/S2666833526000080#sec0021 “it Takes the Identity Out of the Food”: Soldiers’ Perceptions of 3D-printed Food] by a team from [https://sc.devcom.army.mil/ U.S. Army DEVCOM Soldier Center, Natick, MA]
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* [https://www.sciencedirect.com/science/article/abs/pii/S2214860426000011 Self-supported Vapor-Induced Phase-Separation Direct Ink Writing of 3D Cellular Lattices With Subroutine-enabled Tool Path Generation] by a team from [https://www.ufl.edu/ University of Florida, Gainesville], [https://www.clemson.edu/ Clemson University], and [https://www.udel.edu/ University of Delaware]
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* [https://arxiv.org/pdf/2601.00320 Multispectral UV Imaging on Capacitive CMOS Arrays Enabled by Solution-Processed Metal-Oxide Nanoparticles] by a team from [https://www.tudelft.nl/en/ Delft University of Technology (TU Delft), The Netherlands] and [https://www.nxp.com/ NXP Semiconductors]
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* [https://books.google.com/books?hl=en&lr=lang_en&id=fnylEQAAQBAJ&oi=fnd&pg=PA288&dq=hyrel&ots=o2PGSbnXyA&sig=uAoNI-BQowoT35i22HdkDITffUQ#v=onepage&q=hyrel&f=false Additive Manufacturing of Wood Nanocomposites Using Natural Fibers] by a team from the [https://www.uh.edu University of Houston] and [https://www.rice.edu/ Rice University]
  
 
== DIW/SEP/SSE, 2025 ==
 
== DIW/SEP/SSE, 2025 ==
  
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* [https://www.nature.com/articles/s43246-025-01048-y_reference.pdf Multi-functional Liquid Crystal Oligomer Networks for Human-interactive Self-regulation] by a team from [https://www.tue.nl/en/ Eindhoven University of Technology, The Netherlands] and [https://wpi-skcm2.hiroshima-u.ac.jp/ WPI International Institute for Sustainability with Knotted Chiral Meta Matter, Japan]
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* [https://www.mdpi.com/1996-1944/19/1/93 3D Printing of Cement-Based Materials Using Seawater for Simulated Marine Environments] by a team from the [https://www.nrel.gov/ National Laboratory of the Rockies ''(formerly the National Renewable Energy Laboratory)'']
 
* [https://asmedigitalcollection.asme.org/imece-india/proceedings-abstract/IMECE-INDIA2025/89138/V001T01A041/1228635 3D Printed MXene/PEDOT:PSS Supercapacitors for Flexible Electronics ] by a team from the [https://www.iitkgp.ac.in/ Indian Institute of Technology, Kharagpur]
 
* [https://asmedigitalcollection.asme.org/imece-india/proceedings-abstract/IMECE-INDIA2025/89138/V001T01A041/1228635 3D Printed MXene/PEDOT:PSS Supercapacitors for Flexible Electronics ] by a team from the [https://www.iitkgp.ac.in/ Indian Institute of Technology, Kharagpur]
 
* [https://pubs.acs.org/doi/abs/10.1021/acssuschemeng.5c10198 Green Modification of Maple Leaf-Derived Lignin-Containing Nanocellulose through Mechanochemistry for 3D Printable Pickering Emulsions] by a team from the [https://www.mcgill.ca/foodscience/ Department of Food Science and Agricultural Chemistry of McGill University, Quebec] and [http://sklf.jiangnan.edu.cn/Hom/ABOUT_US.htm State Key Laboratory of Food Science and Resources, Jiangnan University, Wuxi, Jiangsu]
 
* [https://pubs.acs.org/doi/abs/10.1021/acssuschemeng.5c10198 Green Modification of Maple Leaf-Derived Lignin-Containing Nanocellulose through Mechanochemistry for 3D Printable Pickering Emulsions] by a team from the [https://www.mcgill.ca/foodscience/ Department of Food Science and Agricultural Chemistry of McGill University, Quebec] and [http://sklf.jiangnan.edu.cn/Hom/ABOUT_US.htm State Key Laboratory of Food Science and Resources, Jiangnan University, Wuxi, Jiangsu]

Latest revision as of 13:50, 17 February 2026

The Published Papers page ran too long, so the pages for Unheated or Chilled Reservoir Printing are listed here, by year of publication.

The information about 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), ran too long, and has been split off here.

To see the list of non-DIW papers, please visit the Published Papers page.

Count

707 total documents as of 17 February, 2026.

Unheated or Chilled Reservoir Printing

Also known as Robocasting or DIW (Direct Ink Writing), VIPS-DIW (Vapor-Induced Phase-Separation Direct Ink Writing), SEP (Semisolid Extrusion Printing), SSE (Semisolid Extrusion). 3DCP (3D Concrete Printing), or DCC (Digital Concrete Construction).

DIW/SEP/SSE, 2026

DIW/SEP/SSE, 2025

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DIW/SEP/SSE, 2024

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DIW/SEP/SSE, 2023

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DIW/SEP/SSE, 2022

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DIW/SEP/SSE, 2021

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DIW/SEP/SSE, 2020

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DIW/SEP/SSE, 2019

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DIW/SEP/SSE, 2018

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DIW/SEP/SSE, 2017

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DIW/SEP/SSE, 2016

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DIW/SEP/SSE, 2015

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DIW/SEP/SSE, 2014

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