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Design and implementation of an FPGA-based timing pulse programmer for pulsed-electron paramagnetic resonance applications

机译:基于FPGA的脉冲电子顺磁共振应用时序脉冲编程器的设计与实现

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摘要

The design, construction and implementation of a field-programmable gate array (FPGA) -based pulse programmer for pulsed-electron paramagnetic resonance (EPR) experiments is described. The FPGA pulse programmer offers advantages in design flexibility and cost over previous pulse programmers, that are based on commercial digital delay generators, logic pattern generators, and application-specific integrated circuit (ASIC) designs. The FPGA pulse progammer features a novel transition-based algorithm and command protocol, that is optimized for the timing structure required for most pulsed magnetic resonance experiments. The algorithm was implemented by using a Spartan-6 FPGA (Xilinx), which provides an easily accessible and cost effective solution for FPGA interfacing. An auxiliary board was designed for the FPGA-instrument interface, which buffers the FPGA outputs for increased power consumption and capacitive load requirements. Device specifications include: Nanosecond pulse formation (transition edge rise/fall times, ≤3 ns), low jitter (≤150 ps), large number of channels (16 implemented; 48 available), and long pulse duration (no limit). The hardware and software for the device were designed for facile reconfiguration to match user experimental requirements and constraints. Operation of the device is demonstrated and benchmarked by applications to 1-D electron spin echo envelope modulation (ESEEM) and 2-D hyperfine sublevel correlation (HYSCORE) experiments. The FPGA approach is transferrable to applications in nuclear magnetic resonance (NMR; magnetic resonance imaging, MRI), and to pulse perturbation and detection bandwidths in spectroscopies up through the optical range.
机译:描述了基于现场可编程门阵列(FPGA)的脉冲编程器的设计,构造和实现,用于脉冲电子顺磁共振(EPR)实验。与基于工业数字延迟发生器,逻辑模式发生器和专用集成电路(ASIC)设计的以前的脉冲编程器相比,FPGA脉冲编程器具有设计灵活性和成本优势的优势。 FPGA脉冲编程器具有新颖的基于过渡的算法和命令协议,该协议针对大多数脉冲磁共振实验所需的时序结构进行了优化。该算法是通过使用Spartan-6 FPGA(Xilinx)实现的,它为FPGA接口提供了一种易于访问且经济高效的解决方案。为FPGA仪器接口设计了一块辅助板,该板可缓冲FPGA输出,以增加功耗和电容负载要求。器件规格包括:纳秒级脉冲形成(过渡沿上升/下降时间,≤3ns),低抖动(≤150ps),通道数量大(已实现16个;可用48个)以及长脉冲持续时间(无限制)。该设备的硬件和软件设计用于方便的重新配置,以匹配用户的实验要求和约束。该器件的操作已通过应用于一维电子自旋回波包络调制(ESEEM)和二维超精细子级相关性(HYSCORE)实验的演示和基准测试。 FPGA方法可转移到核磁共振(NMR;磁共振成像,MRI)中的应用,以及在整个光学范围内的光谱学中对脉冲扰动和检测带宽的转换。

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