Difference between revisions of "Published Papers (DIW)"

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== Count ==
 
== Count ==
  
702 total documents as of 17 February, 2026.
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711 total documents as of 16 March, 2026.
  
 
== '''[[Reservoir_Heads|Unheated or Chilled Reservoir Printing]]''' ==
 
== '''[[Reservoir_Heads|Unheated or Chilled Reservoir Printing]]''' ==
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== DIW/SEP/SSE, 2026 ==
 
== DIW/SEP/SSE, 2026 ==
  
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* [https://iopscience.iop.org/article/10.1088/1361-665X/ae509a/pdf Additive Manufacturing for Layered Piezoelectric Structures with Directional Sensing Capability] by a team from several departments of the [https://www.utep.edu/ The University of Texas at El Paso]
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* [https://advanced.onlinelibrary.wiley.com/doi/abs/10.1002/admt.202500928 Shape Reconfiguration via Geometric Constraint in Mechanisms Incorporating Stimuli-Responsive Twisted Yarns] by a team from [https://www.colorado.edu/chbe/ Department of Chemical and Biological Engineering, University of Colorado, Boulder]
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* [https://www.nature.com/articles/s44334-026-00070-3 Maximizing Solids Loading for Aqueous Slurry Robocasting of Silicon Carbide] by a team from [https://bredesencenter.utk.edu/ Bredesen Center for Interdisciplinary Research and Graduate Education, University of Tennessee, Knoxville] and [https://www.ornl.gov/division/manufacturing-science Manufacturing Science Division, Oak Ridge National Laboratory]
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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]
 
* [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]
 
* [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]
 
* [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]
 
* [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]

Latest revision as of 20:25, 16 March 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

711 total documents as of 16 March, 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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