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1.
Appl Opt ; 35(14): 2439-48, 1996 May 10.
Article in English | MEDLINE | ID: mdl-21085380

ABSTRACT

We present a 2-kbit, 50-Mpage/s, photonic first-in, first-out page buffer based on gallium arsenide/aluminium-gallium arsenide multiple-quantum-well diodes that are flip-chip bonded to submicrometer silicon complementary-metal-oxide-semiconductor circuits. This photonic chip provides nonvolatile storage (buffering), asynchronous-to-synchronous conversion, bandwidth smoothing, tolerance to jitter or skew, spatial format conversion, wavelength conversion, and independent flow control for the input and the output channels. It serves as an interface chip for parallel-accessed optical bit-plane data. It represents the first smart-pixel array that accomplishes the vertical integration of multiple-quantum-well modulators and detectors directly over active silicon VLSI circuits and provides over 340 transistors per optical input-output. Results from high-speed single-channel testing and real-time array operation of the photonic page buffer are reported.

2.
Appl Opt ; 35(23): 4637-40, 1996 Aug 10.
Article in English | MEDLINE | ID: mdl-21102885

ABSTRACT

Owing to printing errors, [Appl. Opt. 35, 2439 (1996)] several figures were illegible. The figures are reprinted and briefly reviewed.

3.
Opt Lett ; 16(1): 36-8, 1991 Jan 01.
Article in English | MEDLINE | ID: mdl-19773829

ABSTRACT

We describe a photonic ring counter that demonstrates cascadability of batch-fabricated symmetric self-electrooptic-effect devices at a bit rate of 12.5 Mbits/sec for conventional operation and at a bit rate of 50 Mbits/sec when the devices are operated as optical signal sense amplifiers. In each of these experiments the average laser power incident upon each device was less than 1 mW. The system switching speeds agree well with speeds calculated by using the measured switching energies of the devices.

4.
Appl Opt ; 30(17): 2287-96, 1991 Jun 10.
Article in English | MEDLINE | ID: mdl-20700207

ABSTRACT

Four arrays of thirty-two GaAs symmetric self-electrooptic effect devices were optically interconnected to form a looped-pipeline optical digital processor. Several circuits were demonstrated, including two shift registers and a decoder circuit. Clock frequencies of up to 1 MHz were attained. Possible extensions to and limitations of this system are described.

5.
Appl Opt ; 30(20): 2841-3, 1991 Jul 10.
Article in English | MEDLINE | ID: mdl-20706319

ABSTRACT

Two identical optical modules were used to demonstrate the cascaded operation of 32-element arrays of symmetric self-electro-optic effect devices. The devices had 5 microm x 10 microm optical windows spaced on a square grid with a 20-microm spacing. They were operated as optically interconnected inverters at 1.1 MHz. The optical power was provided by two current modulated laser diodes per array, each with a maximum output power of 9 mW. The operation of the devices as logic gates is optically implemented but not demonstrated.

6.
Appl Opt ; 29(8): 1157-60, 1990 Mar 10.
Article in English | MEDLINE | ID: mdl-20562974

ABSTRACT

We demonstrate quantum well tri-state logic devices for possible use in optical bus architectures. These optical devices are analogous to the tri-state devices often used in electronic buses, where each device can be actively on, actively off, or disabled with at most one device on the bus active at a time. We show two methods of generating these tri-state data, one using tri-state quantum well modulators and one using optical tri-state self-electrooptic effect devices, and we demonstrate a simple optical bus consisting of two such devices. Finally, we comment on the limitations on the number of devices that can be connected to a bus of this type.

7.
Appl Opt ; 29(14): 2153-63, 1990 May 10.
Article in English | MEDLINE | ID: mdl-20563144

ABSTRACT

We present new optoelectronic logic devices or circuits consisting of electrically connected quantum well PIN diodes capable of implementing any boolean logic function. One class of circuits uses single beams to represent the logic levels and compares their intensities to a locally generated reference signal. A second class of circuits routes signals as differential pairs. The connections of diodes in these circuits resemble the transistor connections in NMOS and CMOS logic families. We demonstrate simple optical programmable logic arrays (e.g., E = AB + CD) using both of these classes of circuits.

8.
Appl Opt ; 29(14): 2164-70, 1990 May 10.
Article in English | MEDLINE | ID: mdl-20563145

ABSTRACT

An optical module designed to perform cascadable optical logic using arrays of symmetric self-electrooptic effect devices (S-SEEDs) is described. The operation of an array of 7 x 3 devices with optical windows spaced by 20 microm is demonstrated including both array preset and individual device switching. The issues leading to the design of this optical system are detailed. This work illustrates some of the issues which must be considered when designing systems using small reflecting electrooptic devices such as SEEDs and free-space optics in digital systems.

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