A field-effect transistor (FET) nanosensor platform using 2D molybdenum disulfide (MoS2) functionalized with single-strand DNA probes for rapid, sensitive, and selective detection of target DNA/RNA molecules. The technology leverages a universal functionalization method based on hexagonal boron nitride encapsulation and pyrene-based linkers, enabling detection limits in the femtomolar range and simultaneous multi-target detection on a single chip.
This solution offers a next-generation biosensing platform built on two-dimensional (2D) molybdenum disulfide (MoS2) field-effect transistors (FETs) functionalized with single-strand DNA probe molecules. The technology enables rapid, highly sensitive, and selective detection of target DNA and RNA sequences, with demonstrated detection limits reaching approximately 1 femtomolar (fM). By integrating a universal surface functionalization method with pre-designed multi-channel FET patterns, the platform supports simultaneous detection of multiple nucleic acid targets on a single device. This makes it well suited for applications in clinical diagnostics, environmental monitoring, agricultural pathogen screening, and point-of-care testing where fast and reliable molecular detection is critical.
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The technology is currently at a mid-to-late stage of laboratory validation. Preliminary results have confirmed successful fabrication of functionalized 2D MoS2-based FET DNA sensors, with demonstrated sensitivity (approximately 1 fM limit of detection) and selectivity against non-complementary sequences. The same functionalization approach has also been validated for PFAS detection, achieving a 0.001 ppb detection limit and multi-analyte simultaneous detection, demonstrating the versatility of the platform. Remaining development work focuses on scaling large-area MoS2 growth, comprehensive sensing performance assessment (response time, sensitivity, and selectivity calibration curves), field validation using plant-derived DNA/RNA samples cross-verified by PCR, and manufacturing the sensors into a portable, USB-connected readout device.
NJIT is a public polytechnic research university (Carnegie R1) in Newark, serving the New York–New Jersey innovation corridor. Industry engages on campus through VentureLink, the university’s startup incubator in University Heights Science Park and the Newark Innovation Zone, and via a large makerspace that supports prototyping for external partners. The New Jersey Innovation Institute (NJII), a corporation of NJIT, provides an industry‑facing gateway, including a venture‑studio model launched with the state’s economic‑development authority, to speed translation and scale. Research is backed by competitive federal funding from agencies such as NSF, NIH, DOE and DoD. An Intellectual Property and Technology Licensing Office manages IP, licensing and startup formation alongside NJII and VentureLink.