Sameer Walavalkar
30Patents
5h-index
14Co-inventors
62Inventor score
Filing activity: Jan 6, 2009 → Dec 17, 2018
Most-cited inventions
| Patent | Title | Area | Cited by | Status |
|---|---|---|---|---|
| US8080468B2 | Methods for fabricating passivated silicon nanowires and devices thus obtained | Emerging Cross-Sectional Technologies | 23 | Active |
| US8569741B2 | Electronic arrangements for passivated silicon nanowires | Emerging Cross-Sectional Technologies | 15 | Active |
| US8809093B2 | Methods for fabricating self-aligning semicondutor heterostructures using silicon nanowires | Emerging Cross-Sectional Technologies | 11 | Active |
| US9234872B2 | Chemical sensing and/or measuring devices and methods | Performing Operations; Transporting | 10 | Active |
| US9243277B2 | Sensor probe for bio-sensing and chemical-sensing applications | Physics | 6 | Active |
| US8535512B2 | Devices and methods for sequencing nucleic acids | Performing Operations; Transporting | 5 | Active |
| US9005548B2 | Methods for fabricating high aspect ratio probes and deforming high aspect ratio nanopillars and micropillars | Emerging Cross-Sectional Technologies | 5 | Active |
| US8100672B2 | Autonomous electrochemical actuation of microfluidic circuits | Emerging Cross-Sectional Technologies | 4 | Active |
| US9512000B2 | Fabrication and self-aligned local functionalization of nanocups and various plasmonic nanostructures on flexible substrates for implantable and sensing applications | Electricity | 4 | Active |
| US9993185B2 | Plasmonics nanostructures for multiplexing implantable sensors | Performing Operations; Transporting | 4 | Active |
| US8148264B2 | Methods for fabrication of high aspect ratio micropillars and nanopillars | Emerging Cross-Sectional Technologies | 4 | Active |
| US9390936B2 | Methods for fabricating high aspect ratio probes and deforming high aspect ratio nanopillars and micropillars | Emerging Cross-Sectional Technologies | 3 | Active |
| US8841712B2 | Nano-pillar transistor fabrication and use | Physics | 3 | Active |
| US9846125B2 | Surface enhanced Raman spectroscopy detection of gases, particles and liquids through nanopillar structures | Human Necessities | 3 | Active |
| US9089819B2 | Particulate nanosorting stack | Electricity | 2 | Active |
| US9913603B2 | Reflowed gold nanostructures for surface enhanced raman spectroscopy | Performing Operations; Transporting | 2 | Active |
| US9987609B2 | Multiplexed surface enhanced Raman sensors for early disease detection and in-situ bacterial monitoring | Physics | 1 | Active |
| US9410887B2 | Optical sensor for analyte detection | Physics | 1 | Active |
| US10189001B2 | Multiplexed surface enhanced Raman sensors for early disease detection and in-situ bacterial monitoring | Physics | 1 | Active |
| US10603650B2 | Multiplexed surface enhanced Raman sensors for early disease detection and in-situ bacterial monitoring | Physics | 1 | Active |
| US10633734B2 | Optical sensor for analyte detection | Physics | 1 | Active |
| US9018684B2 | Chemical sensing and/or measuring devices and methods | Performing Operations; Transporting | 0 | Active |
| US9406823B2 | Methods for fabricating self-aligning semiconductor hetereostructures using nanowires | Emerging Cross-Sectional Technologies | 0 | Active |
| US9099436B2 | Sensor probe for bio-sensing and chemical-sensing applications | Physics | 0 | Active |
| US9524900B2 | Silicon-on-insulator microchannels for biological sensors | Electricity | 0 | Active |
Source: USPTO / EPO open patent data. Inventor disambiguation is heuristic; counts are objective bibliographic measures.