Akca B I, Považay B, Alex A, Wörhoff K, de Ridder R M, Drexler W, Pollnau M
Integrated Optical MicroSystems Group, MESA + Institute for Nanotechnology, University of Twente, 7500 AE Enschede, The Netherlands.
Opt Express. 2013 Jul 15;21(14):16648-56. doi: 10.1364/OE.21.016648.
Optical coherence tomography (OCT) has enabled clinical applications that revolutionized in vivo medical diagnostics. Nevertheless, its current limitations owing to cost, size, complexity, and the need for accurate alignment must be overcome by radically novel approaches. Exploiting integrated optics, we assemble the central components of a spectral-domain OCT system on a silicon chip. The spectrometer comprises an arrayed-waveguide grating with 136-nm free spectral range and 0.21-nm wavelength resolution. The beam splitter is realized by a non-uniform adiabatic coupler with its 3-dB splitting ratio being nearly constant over 150 nm. With this device whose overall volume is 0.36 cm(3) we demonstrate high-quality in vivo imaging in human skin with 1.4-mm penetration depth, 7.5-µm axial resolution, and a signal-to-noise ratio of 74 dB. Considering the reasonable performance of this early OCT on-a-chip system and the anticipated improvements in this technology, a completely different range of devices and new fields of applications may become feasible.
光学相干断层扫描(OCT)已实现了一些临床应用,这些应用彻底改变了体内医学诊断。然而,其目前在成本、尺寸、复杂性以及精确对准需求方面的局限性,必须通过全新的方法来克服。利用集成光学技术,我们在硅芯片上组装了光谱域OCT系统的核心部件。该光谱仪包括一个具有136纳米自由光谱范围和0.21纳米波长分辨率的阵列波导光栅。分束器由一个非均匀绝热耦合器实现,其3分贝的分光比在150纳米范围内几乎恒定。使用这个总体积为0.36立方厘米的设备,我们在人体皮肤中实现了高质量的体内成像,穿透深度为1.4毫米,轴向分辨率为7.5微米,信噪比为74分贝。考虑到这个早期的OCT芯片系统的合理性能以及该技术预期的改进,一系列完全不同的设备和新的应用领域可能会变得可行。