2014•Journal of Applied Research and TechnologyOpen access

Performance Evaluation of an Integrated Optoelectronic Receiver

Alicia Vera-Marquina, J. Martínez-Castillo, Ignacio Enrique Zaldívar-Huerta, Alejandro Díaz‐Sánchez

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Abstract

This work describes the optical and electrical characterization of an integrated optoelectronic receiver. The receiver iscomposed of a photodiode and a transimpedance amplifier, both fabricated in silicon technology using a 0.8 μmBiCMOS process. The total area occupied by the photodiode is of 10,000 μm2. In a first step, the generatedphotocurrent of the photodiode is measured for the wavelengths of 780 nm and 830 nm at different levels of opticalpower. In a second step, the responsivity and quantum efficiency parameters of the photodiode are computed. Finally,an electrical measurement including the transimpedance amplifier is achieved. A potential application for thisoptoelectronic receiver is on the first optical communications window.

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What this paper is about

This work describes the optical and electrical characterization of an integrated optoelectronic receiver. The receiver iscomposed of a photodiode and a transimpedance amplifier, both fabricated in silicon technology using a 0.8 μmBiCMOS process. The total area occupied by the photodiode is of 10,000 μm2. In a first step, the generatedphotocurrent of the photodiode is measured for the wavelengths of 780 nm and 830 nm at different levels of opticalpower. In a second step, the responsivity and quantum efficiency parameters of the photodiode are computed. Finally,an electrical measurement including the transimpedance amplifier is achieved. A potential application for thisoptoelectronic receiver is on the first optical communications window.

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Available abstract

This work describes the optical and electrical characterization of an integrated optoelectronic receiver. The receiver iscomposed of a photodiode and a transimpedance amplifier, both fabricated in silicon technology using a 0.8 μmBiCMOS process. The total area occupied by the photodiode is of 10,000 μm2. In a first step, the generatedphotocurrent of the photodiode is measured for the wavelengths of 780 nm and 830 nm at different levels of opticalpower. In a second step, the responsivity and quantum efficiency parameters of the photodiode are computed. Finally,an electrical measurement including the transimpedance amplifier is achieved. A potential application for thisoptoelectronic receiver is on the first optical communications window.

Key concepts: Transimpedance amplifier, Photodiode, Responsivity, Optoelectronics, Materials science, Amplifier, Wavelength, Quantum efficiency

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