New-generation spacecraft water monitoring with flight ready solid state nanopores
Contract Overview
Solicitation details, issuing organization, response deadlines, documents, and interested companies for this government contract opportunity.
AI Contract Overview
This Phase II SBIR project, identified as NASA-SBIR-154668 and T6.06-1195, focuses on developing the Spacecraft Water Analysis with Nanopore (SWAN) instrument. This miniature analytical sensing platform utilizes solid-state silicon nitride nanopore technology to provide fast and reliable in situ monitoring of potable water for long-duration manned missions, including transit to and exploration of the moon and Mars. The primary goal is to protect astronaut health by detecting and quantifying both organic and inorganic contaminants through a compact, cm-scale reader integrated with automatic data processing and visualization. The technical objectives include fabricating low-noise ultrathin nanopore chips, establishing optimal cleaning and storage protocols, and validating measurement capabilities using simulant ISS water samples to ensure sensitivity and selectivity. The project aims to mature the platform by creating a comprehensive measurement database and defining flight readiness parameters in consultation with NASA scientists and stakeholders. Beyond space applications, this technology has potential terrestrial utility for DNA sequencing, point-of-care diagnostics, and water quality monitoring for the EPA and USDA. The effort is managed by the NASA SBIR/STTR Program and is designated as a total small business set-aside.
General Info
Place of Performance
Houston, PA, 77058, USASet-Aside
Timeline
Organization & Contact Information
Interested Companies (2)
Full Description
Benefits: Our technology features a novel single-molecule detection method designed for water monitoring in spacecrafts. This advanced instrument can be crucial to support the life of crew during long-duration manned missions. The maintenance of safe living conditions is important to support the scientific activities of the crew when away from Earth, including the Artemis Gateway and exploration of the Moon and Mars, both on the surface and in transit, and to ensure their safe and unharmed return to Earth upon mission completion. The proposed nanopore sensor architecture, with its miniaturized and robust design has potential in a wide variety of terrestrial applications ranging from DNA sequencing, point-of-care diagnostics, human pathogen surveillance to agricultural. Additionally, the small molecule analysis capability can be applied to the EPA and USDA needs for measuring water quality.
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