Control of quantum phenomena: Past, present, and future
Constantin Brif, Raj Chakrabarti, and Herschel Rabitz

TL;DR
This paper reviews the evolution and current state of quantum control, emphasizing the role of laser technology, theoretical insights, and adaptive feedback techniques in manipulating quantum phenomena across physics and chemistry.
Contribution
It provides a comprehensive perspective on the development of quantum control, integrating theoretical concepts with experimental advances and future research directions.
Findings
Adaptive feedback control effectively steers quantum dynamics.
Ultrafast laser pulses enable precise quantum interference manipulation.
Stochastic optimization algorithms enhance control pulse design.
Abstract
Quantum control is concerned with active manipulation of physical and chemical processes on the atomic and molecular scale. This work presents a perspective of progress in the field of control over quantum phenomena, tracing the evolution of theoretical concepts and experimental methods from early developments to the most recent advances. The current experimental successes would be impossible without the development of intense femtosecond laser sources and pulse shapers. The two most critical theoretical insights were (1) realizing that ultrafast atomic and molecular dynamics can be controlled via manipulation of quantum interferences and (2) understanding that optimally shaped ultrafast laser pulses are the most effective means for producing the desired quantum interference patterns in the controlled system. Finally, these theoretical and experimental advances were brought together by…
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