Publication | Closed Access
Design and Realization of Triple dsDNA Nanocomputing Circuits in Microfluidic Chips
13
Citations
40
References
2022
Year
EngineeringAnalytical MicrosystemsMolecular BiologyBiological ComputingBiomedical EngineeringNanocomputingMolecular ComputingDna NanotechnologyBiosensing SystemsDna Logic GatesLogic GatesDna ComputingMicrofluidicsMicrofluidic ChipsBiophysicsTriple DsdnaNanotechnologyDna ReplicationNanofluidicsMicrofabricationBiomedical DiagnosticsBasic ComputationsBioelectronicsNatural SciencesLab-on-a-chip
DNA logic gates, nanocomputing circuits, have already implemented basic computations and shown great signal potential for nano logic material application. However, the reaction temperature and computing speed still limit its development. Performing complicated computations requires a more stable component and a better computing platform. We proposed a more stable design of logic gates based on a triple, double-stranded, DNA (T-dsDNA) structure. We demonstrated a half adder and a full adder using these DNA nanocircuits and performed the computations in a microfluidic chip device at room temperature. When the solutions were mixed in the device, we obtained the expected results in real time, which suggested that the T-dsDNA combined microfluidic chip provides a concise strategy for large DNA nanocircuits.
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