Magnetic nanoparticle labels and STO sensors replace optics and lasers, enabling denser nucleic acid sequencing arrays at lower cost.
Magnetic nanoparticles shift spin torque oscillator frequencies to detect nucleic acids without optical scanning, enabling denser and lower-cost sequencing.
High-partition digital assays use color combinatorics and low occupancy to detect 100+ targets with better signal separation and quantitation.
A multi-port valve replaces multiple three-way valves to speed flow-cell loading, simplify sequencing fluidics, and cut cross-contamination.
A rotary valve and pump switch between reagent and cleaning reservoirs to flush residual sequencing fluids and maintain instrument performance.
Nanopore memory cells steer DNA or polymer strands through add chambers to encode data with stable long-term retention and high storage density.
A rotary valve and pump switch sequencing reagents and cleaning liquid through one fluid path to prevent residue and reduce downtime.
Color-combinatoric probes expand digital assays to detect up to 100 targets while reducing signal overlap and improving quantitation precision.
Color combinatorics and low-occupancy partitioning expand digital assay multiplexing while reducing signal overlap and improving quantitation accuracy.
Dual-loop temperature control adjusts jacket fluid only when needed, cutting energy use and avoiding over-tempering or freezing in large tanks.
Measured concentration data drives pipette selection, dispense position, and volume control to cut manual setup in microplate workflows.
A flexible platinum-based glucose sensor stack enables factory-calibrated continuous monitoring with less insertion pain and lower roll-to-roll cost.
Color combinatorics and high-partition digital assays expand target detection beyond dye limits while improving signal-to-noise and quantitation.
Electrical impedance sensors in parallel microchannels replace high-speed imaging to measure cell transit times at high throughput with lower cost.
A DNA strand displacement Brink controller removes dual-rail subtraction to cut reaction count while keeping ultrasensitive delayed enzymatic control.
Genetic analysis links field organisms to treatment timing, product, dose, and application zones for faster, more precise crop protection.
Color combinatorics and low-occupancy partitions enable rapid digital detection of 100+ targets with higher signal-to-noise and wider dynamic range.
Localized electrochemical pH cycling detects ionic strength changes while keeping bulk pH constant, enabling early reaction monitoring without harming enzymes.
Indirect metabolite and process data are fused in a hybrid observer to classify cell states, predict biomaterial output, and curb byproduct formation.