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Published on: August 2, 2019
A flexible system-on-a-chip control hardware for atomic, molecular, and optical physics experiments.
A Trenkwalder1, M Zaccanti1, N Poli1
1Istituto Nazionale di Ottica del Consiglio Nazionale delle Ricerche (INO-CNR), 50019 Sesto Fiorentino, Italy.
A new control system core for atomic, molecular, and optical physics experiments uses a low-cost field-programmable gate array board. This system enables precise timing and synchronous operation of multiple boards for complex research setups.
Area of Science:
- Atomic, Molecular, and Optical (AMO) Physics
- Experimental Physics Control Systems
Background:
- Traditional control systems for AMO physics experiments can be costly and complex.
- There is a need for flexible, high-speed, and precisely timed control solutions for modern experimental setups.
Purpose of the Study:
- To develop and implement a cost-effective control system core for AMO physics experiments.
- To leverage field-programmable gate array (FPGA) technology for high-performance experimental control.
- To enable precise synchronization of multiple control boards for distributed systems.
Main Methods:
- Implementation of a control system core on a commercial low-cost FPGA System-on-a-Chip (SoC) board running Linux.
- Utilizing Gigabit Ethernet for high-speed data transmission and remote system operation.
- Development of a novel auto-synchronization scheme for multi-board synchronous operation.
Main Results:
- Achieved contiguous output and input sampling rates up to 40 MHz.
- Demonstrated synchronous operation of multiple boards with timing errors approaching 1 nanosecond.
- Successfully controlled diverse signal types (digital, analog, radio frequency) with precise timing.
Conclusions:
- The implemented control system core provides a powerful and versatile solution for AMO physics experiments.
- The novel auto-synchronization scheme is suitable for complex distributed experimental setups requiring high timing precision.
- The use of low-cost FPGA boards offers a scalable and accessible platform for advanced experimental control.
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