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Papichaya Chaisakul

Researcher at Kasetsart University

Publications -  76
Citations -  1008

Papichaya Chaisakul is an academic researcher from Kasetsart University. The author has contributed to research in topics: Quantum well & Silicon photonics. The author has an hindex of 18, co-authored 69 publications receiving 873 citations. Previous affiliations of Papichaya Chaisakul include University of Paris-Sud & Université Paris-Saclay.

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Integrated germanium optical interconnects on silicon substrates

TL;DR: The integration of germanium quantum-well devices and low-loss waveguides with silicon substrates shows promise for realizing low loss, on-chip photonic interconnects.
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23 GHz Ge/SiGe multiple quantum well electro-absorption modulator.

TL;DR: The high speed operation of a Ge/SiGe multiple quantum well (MQW) electro-absorption modulator in a waveguide configuration demonstrates the potentiality of Ge/ SiGe MQWs as a building block of silicon compatible photonic integrated circuits for short distance energy efficient optical interconnections.
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Quantum-confined Stark effect measurements in Ge/SiGe quantum-well structures.

TL;DR: The room-temperature quantum-confined Stark effect in Ge/SiGe multiple quantum wells grown by low-energy plasma-enhanced chemical vapor deposition is investigated and both Stark shift and reduction of exciton absorption peak are observed.
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Low-loss Ge-rich Si 0.2 Ge 0.8 waveguides for mid-infrared photonics.

TL;DR: The results put forward the potential of low-index-contrast Si1-xGex waveguides with high Ge concentration as fundamental blocks for mid-infrared photonic integrated circuits.
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Ge-rich graded-index Si 1- xGex waveguides with broadband tight mode confinement and flat anomalous dispersion for nonlinear mid-infrared photonics.

TL;DR: The results confirm the potential of Ge-rich graded-index Si1-xGex waveguides as an attractive platform to develop mid-IR nonlinear approaches requiring broadband dispersion engineering.