In bio-imaging applications, semiconductor quantum dots exhibit size-tunable fluorescence due to quantum confinement, wherein decreasing the nanoparticle radius increases its effective electronic energy bandgap, thereby causing the emitted fluorescence spectrum to shift toward longer wavelengths (red-shift).
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The statement is False. Decreasing the size of a quantum dot increases its energy bandgap, which results in the emission of higher-energy photons corresponding to shorter wavelengths (a blue-shift), not longer wavelengths.
Quantum dots display quantum confinement when their physical dimensions approach the exciton Bohr radius. Decreasing the particle size widens the energy gap between the valence and conduction bands. By the fundamental relation , a larger energy gap produces higher-energy, shorter-wavelength light (blue-shifted emission). Therefore, the assertion that an increased energy bandgap yields longer wavelengths (red-shift) is scientifically incorrect.
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Quantum Confinement Effect and Size-Tunable Optical Emission in Quantum Dots