Related Experiment Video
Updated: Mar 29, 2026

Continuous-wave Thulium Laser for Heating Cultured Cells to Investigate Cellular Thermal Effects
Published on: June 30, 2017
Wideband Electrically-Pumped 1050 nm MEMS-Tunable VCSEL for Ophthalmic Imaging
Demis D John1, Christopher B Burgner1, Benjamin Potsaid1
1Demis D. John, Martin E. Robertson, Christopher B. Burgner and Vijay Jayaraman are with Praevium Research, Inc., 5385 Hollister Avenue, Suite #211, Santa Barbara, CA 93111, U.S.A. ByungKun Lee, Woo Jhon Choi and James G. Fujimoto are with the Massachusetts Institute of Technology, 50 Vassar Street, Room 36-361, Cambridge, MA 02139, U.S.A. Benjamin Potsaid and Alex Cable are with Thorlabs Inc., 56 Sparta Ave., Newton, New Jersey 07860, U.S.A.
Abstract:
In this paper, we present a 1050 nm electrically-pumped micro-electro-mechanically-tunable vertical-cavity-surface-emitting-laser (MEMS-VCSEL) with a record dynamic tuning bandwidth of 63.8 nm, suitable for swept source optical coherence tomography (SS-OCT) imaging. These devices provide reduced cost & complexity relative to previously demonstrated optically pumped devices by obviating the need for a pump laser and associated hardware. We demonstrate ophthalmic SS-OCT imaging with the electrically-pumped MEMS-VCSEL at a 400 kHz axial scan rate for wide field imaging of the in vivo human retina over a 12 mm × 12 mm field and for OCT angiography of the macula over 6 mm × 6 mm & 3 mm × 3 mm fields to show retinal vasculature and capillary structure near the fovea. These results demonstrate the feasibility of electrically pumped MEMS-VCSELs in ophthalmic instrumentation, the largest clinical application of OCT. In addition, we estimate that the 3 dB coherence length in air is 225 meters ± 51 meters, far greater than required for ophthalmic SS-OCT and suggestive of other distance ranging applications.

