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Spread spectrum data transfer from dewar to dewar at 2 gigachipsper second

机译:从杜瓦瓶到杜瓦瓶的扩频数据传输速度为每秒2吉比特

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Spread spectrum data modulation, transmission, and demodulation has been demonstrated between SFQ chips in separate dewars. The baseband demonstration consisted of modulating (encoding) data with a spreading code, transmitting the coded data to a Receiver and demodulating (decoding) the data using an identical spreading code. The Transmitter code was produced by a 2 GHz, 4-bit SFQ pseudorandom sequence generator creating a 15-chip spreading code, which modulated a ~133 MHz data source. This data was output by a 10× superconducting latch providing ~8 mV of AC drive. This signal was fed through 50-Ω coaxial cable to a SFQ Receiver chip in a separate dewar. No amplification of the AC signal between the dewars was needed, however, a slight DC bias was added to the signal as a flux bias for the input SQUID on the Receiver. The Receiver chip consisted of an identical SFQ pseudorandom sequence generator and a data demodulation gate. Demodulating the received data with the code generator produced a replica of the data signal in RZ form. Both time forward and time reversed codes for the spreading/despreading sequence were created
机译:已在单独的杜瓦瓶中的SFQ芯片之间展示了扩频数据的调制,传输和解调。基带演示包括用扩展码调制(编码)数据,将编码后的数据发送到接收器以及使用相同的扩展码解调(解码)数据。发送器代码是由一个2 GHz,4位SFQ伪随机序列发生器产生的,该发生器生成了15个码片的扩展码,该码调制了约133 MHz的数据源。该数据由一个10倍超导锁存器输出,可提供约8 mV的交流驱动。该信号通过50Ω同轴电缆在另一个杜瓦瓶中馈送到SFQ接收器芯片。杜瓦瓶之间无需放大AC信号,但是,将轻微的DC偏置作为接收器上输入SQUID的通量偏置添加到了信号上。接收器芯片由一个相同的SFQ伪随机序列发生器和一个数据解调门组成。用代码生成器解调接收到的数据会生成RZ形式的数据信号副本。为扩频/解扩序列创建了时间正向和时间反向代码

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