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Hierarchical Self-Assembly of GaAs/AlGaAs Quantum Dots, , , , , , , , , and . Phys. Rev. Lett., 92 (16): 166104 (April 2004)Material Distribution across the Interface of Random and Ordered Island Arrays, , , and . Phys.~Rev.~Lett., 93 (24): 246103 (2004)Self-assembled semiconductor nanostructure: climbing up the ladder of order, , , , , , , , , and 2 other author(s). Surf.~Sci., (2002)Composition of self-assembled Ge/Si islands in single and multiple layers, , , and . Appl.~Phys.~Lett., 81 (14): 2614--2616 (September 2002)Universal shapes of self-organized semiconductor quantum dots: Striking similarities between InAs/GaAs(001) and Ge/Si(001), , , , , , and . Appl.~Phys.~Lett., 85 (23): 5673--5675 (2004)SiOx/Si radial superlattices and microtube optical ring resonators, , , and . Applied Physics Letters, (2007)Collective coupling of 3D confined optical modes in monolithic twin microtube cavities formed by nanomembrane origami, , , , , , , , , and 3 other author(s). Nano Lett., (Aug 8, 2022)Formation of carbon-induced germanium dots, , , , and . Appl.~Phys.~Lett., (1997)Morphology Response to Strain Field Interferences in Stacks of Highly Ordered Quantum Dot Arrays, , , and . Phys.~Rev.~Lett., 91 (19): 196103 (2003)Shape, strain, and ordering of lateral InAs quantum dot molecules, , , , , and . Phys.~Rev.~B, 72 (8): 085339 (2005)