Publications by authors named "Beomjoo Kim"

Article Synopsis
  • Peripheral vascular interventions (PVIs) are less painful, require simpler anesthesia, and have shorter recovery times than traditional surgery, but they involve X-ray fluoroscopy, which can harm both patients and doctors.
  • The study introduces a quantum dot (QD)-based magnetic guidewire system that allows for X-ray-free imaging using shortwave infrared (SWIR) technology, enhancing safety during procedures.
  • The QD guidewire is made of a flexible silicone tube with QDs for bioimaging and includes a permanent magnet for precise navigation, showing promise for future use in clinical settings due to its biocompatibility and resistance to degradation.
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Cd Hg Se/HgS/Cd Zn S core/multi-shell quantum dots (QDs) exhibiting bright tissue-penetrating shortwave infrared (SWIR; 1000-1700 nm) photoluminescence (PL) are engineered. The new structure consists of a quasi-type-II Cd Hg Se/HgS core/inner shell domain creating luminescent bandgap tunable across SWIR window and a wide-bandgap Cd Zn S outer shell boosting the PL quantum yield (QY). This compositional sequence also facilitates uniform and coherent shell growth by minimizing interfacial lattice mismatches, resulting in high QYs in both organic (40-80%) and aqueous (20-70%) solvents with maximum QYs of 87 and 73%, respectively, which are comparable to those of brightest visible-to-near infrared QDs.

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Robotic magnetic manipulation systems offer a wide range of potential benefits in medical fields, such as precise and selective manipulation of magnetically responsive instruments in difficult-to-reach vessels and tissues. However, more preclinical/clinical studies are necessary before robotic magnetic interventional systems can be widely adopted. In this study, a clinically translatable, electromagnetically controllable microrobotic interventional system (ECMIS) that assists a physician in remotely manipulating and controlling microdiameter guidewires in real time, is reported.

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