4.8 Article

Direct lift-off and the piezo-phototronic study of InGaN/GaN heterostructure membrane

Journal

NANO ENERGY
Volume 59, Issue -, Pages 545-552

Publisher

ELSEVIER
DOI: 10.1016/j.nanoen.2019.02.066

Keywords

InGaN/GaN; Quantum well; Membranes; Electrochemical etching; The piezo-phototronic effect

Funding

  1. National Natural Science Foundation of China [11474105, 11804103]
  2. Guangdong Natural Science Foundation for Distinguished Young Scholars [2018B030306048]
  3. Science and Technology Program of Guangdong, Province of China [2015B010105011]
  4. GDAS's Project of Science and Technology Development [2019GDASYL-0105063, 2018GDASCX-0810]

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Internal polarizations, caused by the intrinsic material properties and lattice mismatch during material epitaxial growth, exist inherently in III-nitrides and limit significantly their practical applications. Here, InGaN/GaN single quantum well (SQW) structure grown on sapphire substrate was directly exfoliated by electrochemical (EC) etching. The separated InGaN/GaN SQW heterostructure membranes (SQW-HMs) exhibit substantial relaxation of internal strain and polarization compared to the as-grown samples. To further modulate/tune the internal polarizations and corresponding opto-electronic properties of the SQW-HMs, the piezo-phototronic effect was introduced by applying external stress on the freestanding membrane under ultraviolet (UV) light illumination. The obtained photoluminescence (PL) intensity can be effectively modulated in different manners under tensile and compressive straining conditions. Energy diagrams of the SQW-HMs under free and straining conditions were carefully analyzed to illustrate the working mechanisms of the piezo-phototronic modulations. This research provides a new approach to optimize the performances of III-nitride devices and expand their further applications in optical communications and optical integration systems.

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