Español

New method doubles and accelerates thermal tuning of optical chips, supporting two current and voltage regulation methods

476
2024-04-02 14:36:03
Ver traducción

Silicon based quantum chip technology is one of the hot research directions in the field of integrated photonics. Thanks to compatibility with CMOS technology and silicon material characteristics, silicon-based integrated optical chips and devices have many advantages such as low cost, small size, low power consumption, and high integration, providing an ideal platform for large-scale optical computing, optical quantum computing, and information processing applications.

The Mach Zehnder interferometer (MZI) is a core device for high-precision programming operations in optical (quantum) computing chips. By combining and modulating the MZI and phase shifter, the key step of quantum state encoding can be completed, improving the information processing capability of optical quantum chips.

Specifically, the experimenter adjusts the phase difference of the transmitted light in the upper and lower arms of the MZI by applying different currents and voltages, thereby changing the intensity and phase of the output light, resulting in interference and achieving control of the optical path. To maximize the accuracy of chip calculations, it is necessary to accurately find the functional relationship between the phase shifter and the driving voltage and current. With the sharp increase in the number of connected MZIs on the chip, the combination of current, voltage, and phase shifter results in an exponential increase. Therefore, it is particularly important to find an efficient and feedback based current and voltage regulation method for phase shifters.

Thermal tuning test plan for MZI silicon polishing chip
The Sizhen programmable multi-channel current (voltage) source has a compact size and can achieve up to 64 channels of high-precision constant current and constant voltage output. The experimenter connected the current and voltage source to the PCB download adapter board through a shielded cable via SCSI, which can simultaneously apply appropriate voltage or current to 64 channels and adjust to obtain the desired optical signal. The loading values of each channel are initially random, and the experimenter finds the appropriate value through each iteration of the feedback function to achieve fast switching of current and voltage setting values. Among them, the maximum single channel current value of the series products can reach 100mA.

This solution supports two current and voltage regulation methods:
1. Manual adjustment: Directly input indicators through upper computer software
2. Python instruction automation control: The current and voltage source is programmed in Python to transmit control signals to the chip, then the PD value is detected and fed back to the current and voltage source through computer coding to change the control signal until the desired result is obtained.

Figure (a) shows a chip structure that can achieve any unitary transformation, and Figure (b) shows a chip structure that can achieve any two bit quantum operation, integrating a large number of MZI devices on the chip

Thermal tuning testing scheme for MZI silicon zenith computing chip

Source: Guangxing Tianxia

Recomendaciones relacionadas
  • Implementing and studying non Hermitian topological physics using mode-locked lasers

    A mode-locked laser is an advanced laser that can generate very short optical pulses with durations ranging from femtoseconds to picoseconds. These lasers are widely used for studying ultrafast and nonlinear optical phenomena, but they have also been proven to be applicable to various technological applications.Researchers at the California Institute of Technology have recently been exploring the ...

    2024-03-27
    Ver traducción
  • Patterned waveguide enhanced signal amplification within perovskite nanosheets

    Researchers at Busan National University, led by Kwangseuk Kyhm, Professor of Ultra Fast Quantum Optoelectronics from the Department of Optics and Mechatronics, are enhancing signal amplification inside cesium bromide lead perovskite nanosheets through patterned waveguides.Perovskite is a highly attractive material in solar cell applications, but its nanostructure is now being explored as a new la...

    2024-01-10
    Ver traducción
  • Latest breakthrough! 3500W free output blue semiconductor laser

    The 3500W free output blue semiconductor laser beam is output in a free space manner, with a rectangular spot directly acting on the material surface without the need for fiber optics or laser processing heads. This laser has a wavelength of 455 ± 10nm, with continuously adjustable power and a maximum output power of over 3500W. It is mainly used for non-ferrous metal cladding, quenching, etc., to...

    2024-09-03
    Ver traducción
  • Laser induced magnetic generation of non-magnetic materials at room temperature helps to develop faster and more energy-efficient information transmission and storage technologies

    Researchers from the University of Stockholm in Sweden, the Nordic Institute for Theoretical Physics, and the University of Cafoscari in Venice, Italy have successfully demonstrated for the first time how lasers induce quantum behavior at room temperature and make non-magnetic materials magnetic. This breakthrough is expected to pave the way for faster and more energy-efficient computers, informat...

    2024-06-03
    Ver traducción
  • Yang Xueming from Shenzhen has been elected as a Foreign Fellow of the Royal Society of England

    On May 20th, the Royal Society announced on its official website that over 90 scientists who have made outstanding contributions to scientific research have been newly elected as Fellow of The Royal Society (FRS). Yang Xueming, an academician of the CAS Member and chief director of the Shenzhen Free Electron Laser Device, was newly elected as a foreign academician of the Royal Society of England.A...

    05-26
    Ver traducción