Micro/Nano 3D Printing DOI
Shoji Maruo

Elsevier eBooks, Journal Year: 2024, Volume and Issue: unknown

Published: Jan. 1, 2024

3D printing and artificial intelligence tools for droplet microfluidics: Advances in the generation and analysis of emulsions DOI

Sibilla Orsini,

Marco Lauricella, Andrea Montessori

et al.

Applied Physics Reviews, Journal Year: 2025, Volume and Issue: 12(1)

Published: Jan. 21, 2025

Droplet microfluidics has emerged as highly relevant technology in diverse fields such nanomaterials synthesis, photonics, drug delivery, regenerative medicine, food science, cosmetics, and agriculture. While significant progress been made understanding the fundamental mechanisms underlying droplet generation microchannels fabricating devices to produce droplets with varied functionality high throughput, challenges persist along two important directions. On one side, generalization of numerical results obtained by computational fluid dynamics would be deepen comprehension complex physical phenomena microfluidics, well capability predicting device behavior. Conversely, truly three-dimensional architectures enhance microfluidic platforms terms tailoring enhancing flow properties. Recent advancements artificial intelligence (AI) additive manufacturing (AM) promise unequaled opportunities for simulating behavior, precisely tracking individual droplets, exploring innovative designs. This review provides a comprehensive overview recent applying AI AM microfluidics. The basic properties multiphase flows production are discussed, current fabrication methods related introduced, together their applications. Delving into use technologies topics covered include AI-assisted simulations real-time within systems, AM-fabrication systems. synergistic combination is expected active matter expediting transition toward fully digital

Language: Английский

Citations

2

Review on the 3D printing technology and application of magnetic materials: Material-Process-Structure-Application DOI
Haorui Zhai, Xiaodong Li, Shuzhou Yu

et al.

Composites Part B Engineering, Journal Year: 2025, Volume and Issue: unknown, P. 112387 - 112387

Published: March 1, 2025

Language: Английский

Citations

1

Development of Ceramic 3D/4D Printing in China DOI Creative Commons
Xinya Lu, Liu Guo, Jian Lü

et al.

Deleted Journal, Journal Year: 2024, Volume and Issue: 3(4), P. 200158 - 200158

Published: July 14, 2024

China derives its name from rich legacy of traditional ceramic arts, which has inspired generations people in and beyond to improve their processing skills. The review categorises the various additive manufacturing techniques developed into dot-by-dot, line-by-line, area-by-area techniques, according corresponding dimensional printing strategies. These are categorized ISO standards, with an overview representative achievements by Chinese research groups for each method. also summarizes compares materials, parameters, product properties those studies, highlighting differences speeds among different In addition, milestones contemporary four-dimensional (4D) illustrated terms new material (4D elastomer-derived ceramics), process additive–subtractive function shape memory ceramics). Finally, prospects applications discussed.

Language: Английский

Citations

7

Top 10 directions in lithography 3D printing DOI
Ruslan Melentiev,

Maryna Melentieva,

Nan Yu

et al.

Bioprinting, Journal Year: 2024, Volume and Issue: 40, P. e00343 - e00343

Published: April 26, 2024

Language: Английский

Citations

5

The Multifaceted Role of 3D Printed Conducting Polymers in Next-Generation Energy Devices: A Critical Perspective DOI Creative Commons
Nipun Jain, Yusuf Olatunji Waidi

JACS Au, Journal Year: 2025, Volume and Issue: 5(2), P. 411 - 425

Published: Jan. 22, 2025

The increasing human population is leading to growing consumption of energy sources which requires development in devices. modern iterations these devices fail offer sustainable and environmentally friendly answers since they require costly equipment produce a lot waste. Three-dimensional (3D) printing has spurred incredible innovation over the years variety fields clearly an attractive option because technology can create unique geometric items quickly, cheaply, with little Conducting polymers (CPs) are significant family functional materials that have garnered interest research community their high conductivity, outstanding sustainability, economic significance. They extensive number applications involving supercapacitors, power sources, electrochromic gadgets, electrostatic components, conducting pastes, sensors, biological thanks special physical electrical attributes, ease synthesis, appropriate frameworks for attachment. use three-dimensional become popular as exact way enhance prepared networks. Rapid technological advancements reproducing patterns building structures enable automated deposition intricate structures. Different composites been created using oxides metals carbon improve efficiency CPs. Such actively investigated exceptional producers low-power electronic techniques, by range applications, verified surface area, remarkable electrochemical behavior. hybridization such produced equipment, gathering energy, protective storage facilities. A few possible uses CPs sensors discussed this perspective. We also provide overview key strategies scientific industrial eye on potential improvements future.

Language: Английский

Citations

0

Volumetric Additive Manufacturing: Ushering in a New Era of Fabrication DOI Open Access
J. E. Thompson

Hardware, Journal Year: 2025, Volume and Issue: 3(1), P. 2 - 2

Published: March 4, 2025

Additive manufacturing (AM), commonly known as 3D printing, is revolutionizing manufacturing, medicine, and engineering. This perspective explores recent breakthroughs that position AM a disruptive technology. Innovations like volumetric additive (VAM) enable rapid, high-resolution, layer-free fabrication, overcoming limitations of traditional methods. Multi-material printing allows the integration diverse functionalities—fluid channels, structural elements, possibly functional electronic circuits—within single device. Advances in material science, such biocompatible polymers, ceramics, transparent silica glass, expand applicability across healthcare, aerospace, environmental sectors. Emerging applications include custom implants, microfluidic devices, various sensors, optoelectronics. Despite its potential, challenges scalability, diversity, process optimization remain active critical research areas. Addressing these gaps through interdisciplinary collaboration over coming decade will solidify AM’s transformative role reshaping production fostering innovation many industries.

Language: Английский

Citations

0

Dynamic Interface Printing: An Innovative Acoustically-Driven 3D Printing Technology DOI Creative Commons
Yuebing Zheng,

Liuyi Lu,

Ling Zhu

et al.

Fundamental Research, Journal Year: 2025, Volume and Issue: unknown

Published: March 1, 2025

Language: Английский

Citations

0

FDM - 3D printing of thermoplastic composites with high energetic solids content designed for gun propellants DOI Creative Commons

Mihaela Alexandru,

Ovidiu Iorga,

Gabriela Toader

et al.

Defence Technology, Journal Year: 2025, Volume and Issue: unknown

Published: March 1, 2025

Language: Английский

Citations

0

Development of Hydrogels Fabricated via Stereolithography for Bioengineering Applications DOI Open Access
Young Jin Jeon, Minji Kim, Kwang Hoon Song

et al.

Polymers, Journal Year: 2025, Volume and Issue: 17(6), P. 765 - 765

Published: March 14, 2025

The architectures of hydrogels fabricated with stereolithography (SLA) 3D printing systems have played various roles in bioengineering applications. Typically, the SLA successively illuminated light to a layer photo-crosslinkable hydrogel precursors for fabrication hydrogels. These can be classified into point-scanning types and digital micromirror device (DMD) types. form layers by scanning focused light, while DMD illuminate 2D patterns each at once. Overall, were cost-effective allowed good shape fidelity uniform mechanical properties. As result, constructs used regenerate tissues develop lab-on-a-chip devices native tissue-like models.

Language: Английский

Citations

0

Opportunities at the Intersection of 3D Printed Polymers and Pyrolysis for the Microfabrication of Carbon-Based Energy Materials DOI Creative Commons
Philip R. Onffroy,

Samuel Chiovoloni,

Han Lin Kuo

et al.

JACS Au, Journal Year: 2024, Volume and Issue: 4(10), P. 3706 - 3726

Published: Sept. 26, 2024

In an era marked by a growing demand for sustainable and high-performance materials, the convergence of additive manufacturing (AM), also known as 3D printing, thermal treatment, or pyrolysis, polymers to form high surface area hierarchically structured carbon materials stands poised catalyze transformative advancements across spectrum electrification energy storage applications. Designing printed using low-cost resins specifically conversion performance structures via post-printing treatments overcomes challenges printing pure directly due inability be polymerized, melted, sintered under ambient conditions. this perspective, we outline current state AM methods that have been used in combination with pyrolysis generate highlight promising systems explore further. As part endeavor, discuss effects polymer chemistry composition, additives, conditions on resulting pyrolytic properties. Furthermore, demonstrate viability combining continuous liquid interface production (CLIP) vat photopolymerization avenue producing lattice 15 μm feature resolution, paving way carbon-based

Language: Английский

Citations

3