The present disclosure relates to the technical field of lasers, and in particular relates to an all-phase measuring and locking method of an ultra-fast laser pulse and a device thereof.
In the technical field of lasers, how to obtain laser pulses with stronger energy and shorter pulse width has always been an important research direction. Coherent control and coherent combination can form a combined pulse that is shorter than all incident pulses in pulse width, and also greatly improves the energy of the incident pulses. Therefore, the application of coherent control and coherent combination in the field of ultra-intense and ultra-fast laser pulse generation is a frontier subject of strategic significance in the world at present. The key factor of coherent control and coherent combination is how to achieve all-phase measuring and locking of the ultra-fast laser pulses.
The all-phase of an ultra-fast laser pulse is a relative phase between a plurality of coherently combined laser pulses, which includes a relative envelope delay (RED) between the plurality of coherently combined laser pulses and a carrier envelope phase (CEP) of the laser pulses after they have been coherently combined. The RED is a relative phase difference between two pulse envelopes, while the CEP is a phase difference between the carrier and the envelope peak in a single pulse. In the field of periodic laser pulses, RED and CEP have great influence on the coherent combination of pulses. At present, RED and CEP can be locked and controlled respectively, where the methods of locking and controlling RED include balanced optical cross-correlation (BOC), spectral interference scheme, etc., and the methods of locking and controlling CEP include f-2f scheme, etc. In order to lock and control RED and CEP simultaneously, it is necessary to provide two different devices, resulting in extremely complex measurement processes, difficult operation and poor measurement accuracy.
Methods and devices are described herein for performing an all-phase measurement of an ultra-fast laser pulse to overcome the defects of the prior art. The ultra-fast laser pulse may have a spectral range of greater than one octave, and the measurement may be performed as follows. The ultra-fast laser pulses may be split into a first beam comprising a fundamental light with a wavelength λ0 and a second beam comprising a light with a wavelength 2λ0. The light with the wavelength 2λ0 may be frequency doubled to a light with a wavelength λ0 to generate an interference with the fundamental light. Fourier transform may be performed on an interference spectrum of the interference, and a relative envelope delay (RED) between the fundamental light and the frequency doubled light may be acquired, together with a carrier envelope phase (CEP), for example, based on a result of the Fourier transform.
The spectral range of the ultra-fast laser pulse may be between 450 nm and 1000 nm. The wavelength λ0 may be 480 nm. An abscissa and an ordinate of a first peak of the result of the Fourier transform described above may represent the RED and a total relative phase (RTP) respectively. The CEP may be calculated by the following formula:
Φ=wΔt+π/2+φCE,
where Φ may be the total relative phase (RTP), w may be the frequency of the ultra-fast laser pulse, Δt may be the relative envelope delay (RED), and φCE may be the carrier envelope phase (CEP).
The all-phase measurement described herein may further include applying feedback locking based on the RED and the CEP.
A device configured to perform the all-phase measurement of the ultra-fast laser pulse as described herein may include an ultra-fast laser source for emitting the ultra-fast laser pulse. The device may further include a beam splitting element for splitting the ultra-fast laser pulse into the first beam comprising the fundamental light and the second beam comprising the light with a wavelength 2λ0. The device may also include at least one optical path adjusting member, a beam combining element, a frequency doubling crystal, a polarization adjusting member, a spectral acquisition device, and a data processing unit. The at least one optical path adjusting member may be configured to adjust an optical path of the first beam or the second beam. The beam combining element may be disposed behind the at least one optical path adjusting member for combining the first beam and the second beam. The frequency doubling crystal may be configured to frequency double the light with the wavelength 2λ0 to the light with the wavelength λ0. The polarization adjusting member may be configured to adjust polarization directions of the fundamental light and the frequency doubled light to cause an interference therebetween. The spectral acquisition device may be configured to acquire a spectral pattern of the interference, and the data processing unit may be configured to perform the Fourier transform on the spectral pattern of the interference, and extract the RED between the fundamental light and the frequency doubled light and the CEP.
The device may further comprise a feedback control unit for feeding the RED back to the at least one optical path adjusting member and feeding the CEP back to the ultra-fast laser source. As described herein, an abscissa and an ordinate of a first peak of the result of the Fourier transform may represent the RED and a total relative phase (RTP) respectively, and the data processing unit may be configured to calculate the CEP by the following formula:
Φ=wΔt+π/2+φCE,
where Φ may be the total relative phase (RTP), w may be the frequency of the ultra-fast laser pulse, Δt may be the relative envelope delay (RED), and φCE may be the carrier envelope phase (CEP).
Embodiments are further described below with reference to the accompanying drawings, in which:
In order to make the objective, technical solutions and advantages of the embodiments described herein more clear, the embodiments will be described in further detail below with reference to the accompanying drawings by the embodiments. It should be understood that the specific embodiments described herein are only provided as examples and not meant to limit the scope of the methods and apparatus disclosed herein.
In an embodiment, an all-phase measuring and locking method is provided for an ultra-fast laser pulse.
In the frequency domain, the short-wavelength fundamental light and the long-wavelength frequency-doubled light in the super-continuum spectrum can be expressed as:
Ef(w)=√{square root over (If(w))}ei[φ
Esh(w)=√{square root over (Ish(w))}ei[φ
where If(w) and Ish(w) are respectively the intensity of the short-wavelength beam of the fundamental light and the intensity of the beam by frequency doubling the long-wavelength beam of the fundamental light, w is the frequency of the laser pulse, φCE is the carrier envelope phase (CEP) of the laser pulse, and Δt is the relative envelope delay (RED) between the two laser pulses. According to Maxwell's equation, there is a fixed phase shift of π/2 between a second harmonic electric field and the fundamental frequency of the long-wavelength beam. Therefore, φf(w) and φf(w)+π/2 are the spectral phases of the fundamental light and the frequency doubled light, respectively.
The intensity of the interference beam may be expressed as:
I(w)∝|Ef(w)+Esh(w)|2=If(w)+Ish(w)+2√{square root over (If(w)Ish(w))}cos(wΔt+π/2+φCE) (3)
wherein the third item in the formula represents an interference item that involves the information of CEP and RED.
The spectrometer 13 is connected to a data processing unit 14 configured to perform Fourier transform on the intensity of the interference beam of formula (3) above. An imaginary part of the transformation result may represent the total relative phase (RTP):
Φ=wΔt+π/2+φCE (4)
As can be seen from the above formula, the RTP between the two beams includes the relative envelope delay Δt and the carrier envelope phase φCE. Fourier transform is performed on an interference pattern collected by the spectrometer to obtain a curve shown in
In an embodiment, an f-2f device comprising the BBO crystal 8, the band-pass filter 9, the half-wave plate 10, the Glan polarizer 11, the broad-band concave silver mirror 12 and the spectrometer 13 is configured to obtain an interference spectrum information of the two beams. The relative envelope delay of the two beams and carrier envelope phase are extracted from the interference spectrum information, and then fed back to the piezoelectric ceramic and the ultra-fast laser source, respectively, so as to achieve all-phase locking of the ultra-fast laser. The RED can be locked by feeding the RED back to the PZT2 through the first feedback module PID1, and the CEP can be fed back to other members in the laser source, such as amplifiers, stretchers and so on.
A fiber laser may be adopted to obtain the ultra-fast laser by broadening the output of the fiber laser. The piezoelectric ceramic described herein may be replaced with other optical path adjusting members. Furthermore, only one optical path adjusting member may be provided for adjusting the optical path of the long-wavelength beam or the short-wavelength beam, and adjusting the optical path difference between the two beams. The dichroic mirror 2 and dichroic mirror 5 may be replaced with other beam splitting/combining elements.
The data processing unit, the first feedback module and/or the second feedback module may be integrated in a computer to realize Fourier transform of the spectrum as well as extraction and feedback locking of the relative envelope delay and carrier envelope phase. The frequency doubling crystal may employ other third-order nonlinear media, such as KDP, PPLN, ammonium dihydrogen phosphate (ADP), potassium dihydrogen phosphate (KDP), potassium dideuterium phosphate (DKDP), cesium dideuterium sulfate (DCDA) and cesium dihydrogen sulfate (CDA), and so on.
The spectral range of the super-continuum spectrum output by the ultra-fast laser source may be greater than one octave. To achieve all-phase locking, the ultra-fast laser is split into a first beam containing a light with a wavelength λ0 and a second beam containing a light with a wavelength 2λ0, so that the light beam with the wavelength 2λ0 is frequency-doubled to interfere with the fundamental light beam with the wavelength λ0. The corresponding RED and CEP can be extracted by collecting the interference spectrum and further performing Fourier transform, thus further achieving all-phase locking of the ultra-fast laser pulse. The methods and devices described herein are also suitable for all-phase measurement of electromagnetic spectrum in other frequency bands, such as X-ray, UV-light, visible light, infrared light or Terahertz wave bands.
Although examples and embodiments are described herein, the methods and apparatus for measuring and locking ultra-fast laser pulses are not limited to the described examples and embodiments, and can include variations made without departing from the scope of the disclosure.
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Number | Date | Country | |
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20210376556 A1 | Dec 2021 | US |