Abstract
We have developed a unique device, a dynamic diamond anvil cell (dDAC), which repetitively applies a time-dependent load/pressure profile to a sample. This capability allows studies of the kinetics of phase transitions and metastable phases at compression (strain) rates of up to 500 GPas (∼0.16 s-1 for a metal). Our approach adapts electromechanical piezoelectric actuators to a conventional diamond anvil cell design, which enables precise specification and control of a time-dependent applied load/pressure. Existing DAC instrumentation and experimental techniques are easily adapted to the dDAC to measure the properties of a sample under the varying load/pressure conditions. This capability addresses the sparsely studied regime of dynamic phenomena between static research (diamond anvil cells and large volume presses) and dynamic shock-driven experiments (gas guns, explosive, and laser shock). We present an overview of a variety of experimental measurements that can be made with this device. © 2007 American Institute of Physics.
Cite
CITATION STYLE
Evans, W. J., Yoo, C. S., Lee, G. W., Cynn, H., Lipp, M. J., & Visbeck, K. (2007). Dynamic diamond anvil cell (dDAC): A novel device for studying the dynamic-pressure properties of materials. Review of Scientific Instruments, 78(7). https://doi.org/10.1063/1.2751409
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