3D Printing in Medicine

Scope & Guideline

Exploring the future of medicine, one layer at a time.

Introduction

Welcome to your portal for understanding 3D Printing in Medicine, featuring guidelines for its aims and scope. Our guidelines cover trending and emerging topics, identifying the forefront of research. Additionally, we track declining topics, offering insights into areas experiencing reduced scholarly attention. Key highlights include highly cited topics and recently published papers, curated within these guidelines to assist you in navigating influential academic dialogues.
LanguageEnglish
ISSN-
PublisherSPRINGERNATURE
Support Open AccessNo
Country-
Type-
Converge-
Abbreviation3D PRINT MED / 3D Print. Med.
Frequency1 issue/year
Time To First Decision-
Time To Acceptance-
Acceptance Rate-
Home Page-
AddressCAMPUS, 4 CRINAN ST, LONDON N1 9XW, ENGLAND

Aims and Scopes

The journal '3D Printing in Medicine' is dedicated to the exploration and application of 3D printing technologies in the medical field. It aims to bridge the gap between technological advancements and clinical practices, focusing on innovative solutions that enhance patient care and surgical outcomes.
  1. Patient-Specific Models and Implants:
    The journal emphasizes the development and use of individualized 3D printed models and implants tailored for specific patient anatomies, which are crucial for improving surgical precision and outcomes.
  2. Surgical Simulation and Training:
    A core area of focus is the creation of 3D printed simulators for surgical training, allowing healthcare professionals to practice complex procedures in a risk-free environment.
  3. Innovative Medical Devices:
    The journal explores the design and implementation of novel medical devices produced through 3D printing, which can enhance functionality and accessibility in clinical settings.
  4. Material Science and Biocompatibility:
    Research on the materials used in 3D printing, including biocompatible and bioresorbable polymers, is a significant aspect, addressing safety and efficacy in medical applications.
  5. Point-of-Care Manufacturing:
    The journal advocates for point-of-care 3D printing, enabling rapid production of medical devices and models directly in clinical settings, which can significantly reduce wait times and costs.
Recent publications in '3D Printing in Medicine' have highlighted several emerging themes that indicate the journal's evolving focus and the growing interests of researchers in specific areas of 3D printing technology and its applications in healthcare.
  1. Augmented and Virtual Reality Integration:
    There is an increasing trend towards integrating augmented and virtual reality with 3D printing to enhance surgical planning and education, reflecting a push for more immersive and interactive training methods.
  2. Advanced Imaging Techniques:
    Emerging themes include the use of advanced imaging technologies, such as CT and MRI, to create highly accurate 3D models for preoperative planning, which is becoming a critical aspect of personalized medicine.
  3. Bioprinting and Tissue Engineering:
    Research into bioprinting techniques aimed at fabricating biological tissues and organs is gaining traction, indicating a significant interest in regenerative medicine and complex tissue structures.
  4. Quality Assurance and Standardization:
    There is a growing emphasis on the quality assurance of 3D printed medical devices and models, with a focus on establishing standards and protocols to ensure safety and efficacy in clinical applications.
  5. Patient Education and Engagement:
    Innovative uses of 3D printed models for patient education and engagement in treatment decisions are emerging, highlighting the importance of patient-centric approaches in healthcare.

Declining or Waning

As the field of 3D printing in medicine evolves, certain themes and topics have shown a decline in focus within the journal. These waning scopes reflect shifts in research interests and technological advancements that may have led to reduced frequency of publications.
  1. Traditional Manufacturing Techniques:
    There is a noticeable decrease in research related to conventional manufacturing methods as 3D printing technologies become more dominant in medical applications.
  2. Generalized Medical Applications:
    Papers focusing on broad, non-specific applications of 3D printing in medicine are declining, indicating a shift towards more specialized and targeted uses.
  3. Basic Material Properties:
    While material science remains important, studies solely focused on basic properties of materials without direct clinical application are less frequently published, as the emphasis shifts towards practical applications.
  4. Historical Context of 3D Printing:
    Research that delves primarily into the historical development of 3D printing technologies in medicine is diminishing, as the field moves towards future-oriented and innovative studies.

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