Real-time diffuse correlation spectroscopy with on-chip correlators for measuring human cerebral blood flow and brain function

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Real-time diffuse correlation spectroscopy with on-chip correlators for measuring human cerebral blood flow and brain function
Title:
Real-time diffuse correlation spectroscopy with on-chip correlators for measuring human cerebral blood flow and brain function
Journal Title:
Journal of Innovative Optical Health Sciences
Keywords:
Publication Date:
22 May 2026
Citation:
Wang, Q., Hua, Y., Li, C., Yuan, Z., Wang, J., Erdogan, A. T., Chen, H., Huang, X., Wojtkiewicz, M., Gorman, A., Pan, M., Zhang, Y., Wang, Y., Finlayson, N., Bi, R., Henderson, R. K., Yuan, Z., & Li, D. D.-U. (2026). Real-time diffuse correlation spectroscopy with on-chip correlators for measuring human cerebral blood flow and brain function. Journal of Innovative Optical Health Sciences. https://doi.org/10.1142/s1793545826500203
Abstract:
Diffuse correlation spectroscopy (DCS) is a noninvasive optical technique that probes microvascular blood flow in deep tissues. Here, we present and validate a new on-chip hardware correlator for high-speed DCS measurements. The correlator is embedded in a custom-built [Formula: see text] single-photon avalanche diode (SPAD) array named ATLAS, which computes intensity autocorrelation functions directly on-chip at a sampling rate of 116[Formula: see text]Hz — the fastest DCS acquisition reported to date. Unlike conventional DCS systems that suffer from low light throughput and therefore cannot resolve cardiac pulsations at source-detector separations ([Formula: see text]) beyond 30[Formula: see text]mm, our massively parallel on-chip architecture computes autocorrelations within each macropixel, eliminating the data-throughput bottleneck. This enables high-SNR, real-time detection of pulsatile blood flow even at [Formula: see text] [Formula: see text]mm on the human forehead. In phantom experiments at [Formula: see text] [Formula: see text]mm, ATLAS-DCS achieves a 12-fold improvement in signal-to-noise ratio over a conventional single-channel DCS instrument while operating at 116[Formula: see text]Hz. In human subjects, we resolve functional hyperemia during a mental arithmetic task at [Formula: see text] [Formula: see text]mm. Furthermore, we integrate ATLAS-DCS with a frequency-domain near-infrared spectroscopy (FD-NIRS) module, enabling simultaneous monitoring of blood flow and tissue oxygenation. With this combined system, we can concurrently resolve core hemodynamic parameters. The on-chip parallelized DCS design substantially improves detection speed, depth sensitivity, and real-time capability, paving the way for wearable, high-speed cerebral blood flow monitoring in both clinical and research settings.
License type:
Attribution 4.0 International (CC BY 4.0)
Funding Info:
There was no specific funding for the research done
Description:
ISSN:
1793-5458
1793-7205