Chen Hao, Yeh Tzu-Hung, He Juan, Zhang Caicai, Abbel Robert, Hamblin Michael R, Huang Yingying, Lanzafame Raymond J, Stadler Istvan, Celli Jonathan, Liu Shun-Wei, Wu Shin-Tson, Dong Yajie
College of Optics and Photonics, University of Central Florida, Orlando, FL, USA. Nanoscience Technology Center, University of Central Florida, Orlando, FL, USA.
Department of Electronic Engineering, National Taiwan University of Science and Technology, Taipei City, Taiwan. Organic Electronics Research Center, Ming Chi University of Technology, New Taipei City, Taiwan.
J Soc Inf Disp. 2018 May;26(5):296-303. doi: 10.1002/jsid.650. Epub 2018 May 4.
Quantum dot light-emitting devices (QLEDs), originally developed for displays, were recently demonstrated to be promising light sources for various photomedical applications, including photodynamic therapy cancer cell treatment and photobimodulation cell metabolism enhancement. With exceptional emission wavelength tunability and potential flexibility, QLEDs could enable wearable, targeted photomedicine with maximized absorption of different medical photosensitizers. In this paper, we report, for the first time, the in vitro study to demonstrate that QLEDs-based photodynamic therapy can effectively kill Methicillin-resistant , an antibiotic-resistant bacterium. We then present successful synthesis of highly efficient quantum dots with narrow spectra and specific peak wavelengths to match the absorption peaks of different photosensitizers for targeted photomedicine. Flexible QLEDs with a peak external quantum efficiency of 8.2% and a luminance of over 20,000 cd/m at a low driving voltage of 6 V were achieved. The tunable, flexible QLEDs could be employed for oral cancer treatment or diabetic wound repairs in the near future. These results represent one fresh stride toward realizing QLEDs' long-term goal to enable the wide clinical adoption of photomedicine.
量子点发光器件(QLED)最初是为显示器开发的,最近被证明是用于各种光医学应用的有前景的光源,包括光动力疗法治疗癌细胞和光双调制增强细胞代谢。凭借出色的发射波长可调性和潜在的灵活性,QLED可以实现可穿戴的靶向光医学,使不同的医学光敏剂实现最大化吸收。在本文中,我们首次报告了一项体外研究,以证明基于QLED的光动力疗法可以有效杀死耐甲氧西林金黄色葡萄球菌,这是一种耐抗生素细菌。然后,我们展示了成功合成具有窄光谱和特定峰值波长的高效量子点,以匹配不同光敏剂的吸收峰,用于靶向光医学。实现了峰值外量子效率为8.2%、在6V低驱动电压下亮度超过20000cd/m²的柔性QLED。这种可调谐、柔性的QLED在不久的将来可用于口腔癌治疗或糖尿病伤口修复。这些结果代表了朝着实现QLED使光医学广泛临床应用的长期目标迈出的新一步。