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Titlebook: Energy-Efficient VCSELs for Optical Interconnects; Philip Moser Book 2016 Springer International Publishing Switzerland 2016 Energy-effici

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https://doi.org/10.1007/978-1-4613-1833-0, that apply to all different designs of oxide-confined VCSELs. These principles are verified by measurements of several different epitaxial VCSEL designs emitting at 850 and 980-nm, respectively. In the following the design of those VCSELs that are measured for this dissertation is roughly describe
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Angelos Malliaris,Jacques Lang,Raoul Zanameter of the VCSEL is investigated at room temperature in the following sections. The energy efficiency of VCSELs with different oxide-aperture diameters is compared by investigating the ratio of the consumed and dissipated energy over the modulation bandwidth . and it is demonstrated that VCSELs wi
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P. Stenius,H. Palonen,G. Ström,L. Ödbergially for short-distance optical interconnects the ambient temperature can be as high as 85 .C. For those optical interconnects the performance and the properties of the VCSELs at high temperatures is even more important than at room temperature. Commonly VCSELs are referred to as being temperature-
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https://doi.org/10.1007/978-3-319-24067-1Energy-efficient VCSELs; Energy-efficient data transmission; GaAs-based oxide-confined VCSELs; Green ph
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Structure and Application of Surfactants,This chapter provides a short introduction into the problem of the exponentially increasing energy consumption in data centers and supercomputers mainly caused by the growth of the global Internet traffic and computational bandwidth demand.
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