ADVANCED RESEARCH SYSTEMS, INC. — Department of Energy SBIR Phase II: C51-16a

ADVANCED RESEARCH SYSTEMS, INC. — SBIR Phase II award from Department of Energy.

Amount
$1,149,988
Agency
Department of Energy
Program / Phase
SBIR · Phase II
Topic
C51-16a
NAICS
Place of performance
PA
Period
2022-04-04 → 2024-04-03

Description

Solid-state quantum defects (e.g., single atomic defects and dopants in solids, semiconductor quantum dots, or organic molecules) play a central role in quantum information science and technology. The discovery, screening, and optimization of quantum defects and emitters are essential for America’s global competitiveness. However, these goals are extremely challenging because of the lack of an integrated instrument for rapid quantum defect characterization of their full set of relevant physical parameters in a multimodal fashion. Advanced Research Systems (ARS) in collaboration with Professor Markus Raschke and Professor Shuo Sun (University of Colorado and JILA, Boulder) will develop a cryogenic quantum optical and spin probe station for high-throughput characterization of solid-state quantum defects. This instrument includes local probe imaging with atomic resolution, nano-optical and confocal spectroscopy, and spin resonance measurement. The instrument provides a new correlative approach and tool for rapid quantum defect spectroscopy, imaging, and screening. The instrument is enabled through an innovative approach by ARS based on the development of 4 K pneumatic drive Solvay cryocoolers and their techniques for decoupling the cryocooler cold head from the sample space using a helium exchange gas interface in combination with a new tabletop vibration isolation structure. During Phase I the tabletop vibration isolation prototype was designed, manufactured, and tested at ARS, then shipped to the University of Colorado for integration and testing with an atomic force microscope (AFM). The noise levels using the tabletop prototype matched those of a permanently anchored AFM benchmark system, paving the way for further development in Phase II. Additional Phase I accomplishments included setup and automation of far-field optical components, which will be integrated with the AFM/near-field components in the proposed Phase II prototype. Phase II will focus on the development of a fully integrated quantum probe station for correlative and automated laser scanning, optical nano-probe, and spin resonance measurements at variable and cryogenic temperature. Automated realignment and measurement at variable temperature, magnetic field, and excitation wavelength will be developed. The Phase II goals are to demonstrate the quantum probe station performance for large-scale screening and discovery of solid-state quantum defects, leading to the commercialization of this system. The quantum probe station product will be manufactured and sold by ARS under the name “Avalanche”. It will feature automated test and measurement, data acquisition and processing, and real-time visualization. It will have a global market with wide range of customers in academia, national labs, and industry worldwide for a standardized, rapid, and facile characterization and discovery of quantum defect for quantum information science and technology. Beyond this specific target of quantum information applications, the instrument may be customized to find a broader market in materials science, conventional semiconductor device characterization, optoelectronic and photonic device manufacturing, single molecule spectroscopy, or polymer, thin film, and electrode interface characterization, i.e., advancing materials science where defects and associated structural heterogeneities play a crucial role controlling materials properties.