Deng Yu-Hao, Pang Chao, Kheradmand Ezat, Leemans Jari, Bai Jing, Minjauw Matthias, Liu Jiayi, Molkens Korneel, Beeckman Jeroen, Detavernier Christophe, Geiregat Pieter, Van Thourhout Dries, Hens Zeger
Physics and Chemistry of Nanostructures Group, Ghent University, Ghent, 9000, Belgium.
Center for Nano and Biophotonics, Ghent University, Ghent, 9052, Belgium.
Adv Mater. 2024 Jul;36(28):e2402002. doi: 10.1002/adma.202402002. Epub 2024 May 3.
Ultrafast short-wavelength infrared (SWIR) photodetection is of great interest for emerging automated vision and spatial mapping technologies. Colloidal quantum dots (QDs) stand out for SWIR photodetection compared to epitaxial (In,Ga)As or (Hg,Cd)Te semiconductors by their combining a size-tunable bandgap and a suitability for cost-effective, solution-based processing. However, achieving ultrafast, nanosecond-level response time has remained an outstanding challenge for QD-based SWIR photodiodes (QDPDs). Here, record 4 ns response time in PbS-based QDPDs that operate at SWIR wavelengths is reported, a result reaching the requirement of SWIR light detection and ranging based on colloidal QDs. These ultrafast QDPDs combine a thin active layer to reduce the carrier transport time and a small area to inhibit slow capacitive discharging. By implementing a concentration gradient ligand exchange method, high-quality p-n junctions are fabricated in these ultrathin QDPDs. Moreover, these ultrathin QDPDs attain an external quantum efficiency of 42% at 1330 nm, due to a 2.5-fold enhanced light absorption through the formation of a Fabry-Perot cavity within the QDPD and the highly efficient extraction (98%) of photogenerated charge carriers. Based on these results, it is estimated that a further increase of the charge-carrier mobility can lead to PbS QDPDs with sub-nanosecond response time.
超快短波长红外(SWIR)光电探测对于新兴的自动化视觉和空间测绘技术具有重要意义。与外延(In,Ga)As或(Hg,Cd)Te半导体相比,胶体量子点(QDs)因其具有尺寸可调的带隙以及适用于经济高效的基于溶液的加工工艺,在SWIR光电探测方面表现突出。然而,对于基于量子点的SWIR光电二极管(QDPDs)而言,实现纳秒级的超快响应时间仍然是一个重大挑战。在此,报道了基于PbS的QDPDs在SWIR波长下运行时创纪录的4 ns响应时间,这一结果达到了基于胶体量子点的SWIR光探测和测距的要求。这些超快QDPDs结合了薄有源层以减少载流子传输时间和小面积以抑制缓慢的电容放电。通过实施浓度梯度配体交换方法,在这些超薄QDPDs中制备了高质量的p-n结。此外,由于在QDPD内形成了法布里-珀罗腔,光吸收增强了2.5倍,并且光生电荷载流子的提取效率很高(98%),这些超薄QDPDs在1330 nm处的外量子效率达到了42%。基于这些结果,据估计载流子迁移率的进一步提高可能会导致PbS QDPDs具有亚纳秒级的响应时间。