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Related Concept Videos

Bioplastics01:27

Bioplastics

Bioplastics derived from microbial processes present a sustainable alternative to conventional petroleum-based plastics. Among these, polyhydroxyalkanoates (PHAs), particularly polyhydroxybutyrates (PHBs), have emerged as prominent candidates due to their biodegradability and biocompatibility. These polymers are synthesized by a variety of bacteria, such as Cupriavidus necator and Pseudomonas putida, which naturally accumulate PHAs as intracellular carbon and energy reserves, especially under...

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RETRACTED: Alshabanah et al. Elastic Nanofibrous Membranes for Medical and Personal Protection Applications: Manufacturing, Anti-COVID-19, and Anti-Colistin Resistant Bacteria Evaluation. <i>Polymers</i> 2021, <i>13</i>, 3987.

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Correction: Kang et al. Energy-Saving Electrospinning with a Concentric Teflon-Core Rod Spinneret to Create Medicated Nanofibers. <i>Polymers</i> 2020, <i>12</i>, 2421.

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Viability of Bioprinted Cellular Constructs Using a Three Dispenser Cartesian Printer
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Biomass 3D Printing: Principles, Materials, Post-Processing and Applications.

Yongxia Li1, Xueyong Ren1, Lin Zhu1

  • 1National Forestry and Grassland Engineering Technology Center for Wood Resources Recycling, College of Materials Science and Technology, Beijing Forestry University, Beijing 100083, China.

Polymers
|June 28, 2023
PubMed
Summary
This summary is machine-generated.

Biomass 3D printing utilizes renewable materials for sustainable development. This review covers six additive manufacturing technologies, highlighting their principles, materials, and applications for eco-friendly material production.

Keywords:
3D printingapplicationsbiomassmaterial manufacturingpost-processingsustainable

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Area of Science:

  • Materials Science
  • Sustainable Manufacturing
  • Additive Manufacturing

Background:

  • The global shift towards a green and low-carbon economy necessitates efficient utilization of renewable biomass resources.
  • Advanced manufacturing technologies like 3D printing offer low energy consumption, high efficiency, and customization, aligning with sustainable development goals.

Purpose of the Study:

  • To review and systematically discuss common 3D printing technologies for biomass additive manufacturing.
  • To provide insights into printing principles, materials, technical progress, post-processing, and applications of biomass 3D printing.

Main Methods:

  • Review of six key 3D printing technologies: Fused Filament Fabrication (FFF), Direct Ink Writing (DIW), Stereo Lithography Appearance (SLA), Selective Laser Sintering (SLS), Laminated Object Manufacturing (LOM), and Liquid Deposition Molding (LDM).
  • Systematic summary and detailed discussion of each technology's aspects.

Main Results:

  • Detailed analysis of the printing principles, common materials, technical advancements, post-processing techniques, and applications for each of the six biomass 3D printing methods.
  • Identification of current trends and challenges in the field.

Conclusions:

  • Future development directions include expanding biomass resource availability, enhancing printing technologies, and promoting wider applications.
  • The integration of abundant biomass feedstocks with advanced 3D printing presents a sustainable, low-carbon pathway for the materials manufacturing industry.