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  • Home
  • Events
    • Event 1
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    • Interview #1
    • Interview #2
    • Event 3
    • Event 4
  • About us
  • Team
  • Articles
    • Medicine >
      • MD/DO
      • Smart Implants: The Future of Medical Devices
      • Artificial Intelligence in Drug Discovery: Accelerating the Search for New Medicines
      • High-Throughput Screening: Finding Needles in Haystacks
      • Liquid Biopsy: A Non-Invasive Way to Detect Cancer
      • Artificial Intelligence in Medical Imaging: Enhancing Diagnosis
      • Robotic Surgery: Precision and Minimally Invasive Procedures
      • Organ-on-a-Chip: Mimicking Human Organs for Drug Testing
      • The Gene-Editing Technology That Could Cure Diseases
      • AI Healthcare: Revolutionizing Diagnosis and Treatment
      • HIV/AIDS Treatment
      • Proton Therapy: A Precise Form of Radiation Therapy
      • Organ Transplantation
      • Harnessing the Immune System to Fight Cancer
      • The Ancient Art of Acupuncture: A Modern Perspective
      • Telemedicine: The Future of Remote Healthcare
      • The Future of Clot-Busting
      • Targeted Therapy: Precision Medicine for Cancer Treatmente
      • Monitoring Health in Real-TimeNew Page
      • Microfluidics in Drug Development: Small-Scale Solutions for Big Problems
      • 3D Printing in Medicine
      • Breast Cancer
      • Nanomedicine
      • COVID-19: The Delta Variant
      • Genetic Engineering
      • Surviving the Next Pandemic
      • Update: Cancer
      • Alternate Personalities
      • Internet Overuse
      • Cloning
      • Covid vaccine
      • Consciousness
      • mask
      • Deja Vu
    • Methodological Innovation in Research >
      • High-Throughput Screening: Accelerating Material Discovery
      • Machine Learning in Materials Science: Accelerating Discovery
      • In Situ Characterization: Real-Time Analysis of Materials
      • Cryo-Electron Microscopy: Visualizing Materials at the Atomic Level
      • Computational Materials Design: Predicting Properties with Simulations
      • Additive Manufacturing: 3D Printing of Advanced Materials
      • Combinatorial Materials Science: High-Speed Material Discovery
      • Nanofabrication: Building Materials at the Nanoscale
      • Self-Assembly: Nature-Inspired Material Design
      • Biomimetic Materials: Learning from Nature
    • New Technologies >
      • Advancements in Renewable Energy Technologies
      • Deep Learning: How AI Learns Like a Human
      • Quantum Computing: The Supercomputer of the Future
      • The Evolution of Wearable Technology
      • The Technology and Challenges of Autonomous Vehicles
      • The New Age of Biotech: CRISPR
      • The Future of Transport
      • Brain-Computer Interfaces (BCIs): Connecting Minds to Machines
      • Augmented Reality (AR): Blending the Digital and Physical Worlds
      • Blockchain and Decentralization: The Future of Trust Online
      • Nanotechnology: The Tiny Science with Big Possibilities
      • Innovations in Human-Machine Interaction
      • War
      • LiDAR
      • 3D printing
      • New energy
      • alphago
      • How Can Virtual Reality Change The World?
      • Metaverse
      • Neuralink
      • Spiral Engine
      • Optimus
    • Future Materials >
      • Aerogels: The Lightest Solids on Earth
      • Metamaterials: Engineering the Impossible
      • Biodegradable Plastics: A Sustainable Future
      • Graphene: The Wonder Material of the 21st Century
      • Carbon Nanotubes: The Building Blocks of Future Technologies
      • Biomaterials: Bridging the Gap Between Biology and Engineering
      • Nanomaterials: The Power of the Very Small
      • Self-Healing Materials: The Future of Durability
      • Shape Memory Alloys: Materials with a Memory
      • Smart Materials: Responding to Their Environment
      • Baking Soda
      • Acids and Bases--Brief
      • Esters and Applications
      • Iodine Clock Reaction
      • Haber Process
      • Elemental Facts
      • Elemental Facts Pt. 2
      • Hall Process
      • Doping
      • Flame Tests
      • Carbon Snake Experiment
      • Chemical Traffic Light
      • Polymers
      • Thermometers
      • Calorimetry
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      • Artificial Intelligence
      • Data Trust
      • Virtual Reality
      • The Popularity of TikTok
      • Blockchain Technology
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      • 5G Technology
      • Quantum Computing
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                                                              Robotic Surgery: Precision and Minimally Invasive Procedures
Introduction: Robotic surgery is revolutionizing the way surgeries are performed, offering greater precision, flexibility, and control than traditional methods. In this article, we’ll explore how robotic surgery works, its benefits, and the challenges it faces.
How Robotic Surgery Works:
Robotic surgery involves the use of robotic systems to assist surgeons in performing minimally invasive procedures. The most widely used system is the da Vinci Surgical System, which consists of robotic arms equipped with surgical instruments and a high-definition 3D camera. The surgeon controls the robotic arms from a console, allowing for precise movements.
Benefits of Robotic Surgery:
  • Precision: Robotic systems can perform highly precise movements, reducing the risk of complications.
  • Minimally Invasive: Robotic surgery often requires smaller incisions, leading to less pain, reduced scarring, and faster recovery times.
  • Enhanced Visualization: The 3D camera provides a magnified, high-definition view of the surgical site, improving the surgeon’s ability to see and operate.
Challenges of Robotic Surgery:
  • Cost: Robotic surgery systems are expensive, and the cost of procedures can be higher than traditional surgery.
  • Training: Surgeons require specialized training to operate robotic systems, which can be time-consuming and costly.
  • Limited Availability: Robotic surgery systems are not available in all hospitals, limiting access for some patients.
The Future of Robotic Surgery: Researchers are working on developing more advanced robotic systems that can perform complex procedures with even greater precision. They are also exploring the use of AI to assist surgeons in real-time during robotic surgeries.

Further Reading:
  1. Mayo Clinic - Robotic Surgery
    https://www.mayoclinic.org/
  2. Johns Hopkins Medicine - Robotic Surgery
    https://www.hopkinsmedicine.org/
  3. ScienceDaily - Robotic Surgery
    https://www.sciencedaily.com/
  4. FDA - Robotic Surgery
    https://www.fda.gov/
  5. Nature - Robotic Surgery
    ​https://www.nature.com/
                                                                                                                                                                                     Contributed by Queenie Dai
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