Chiral molecule characterization system with pulse recycling
The characterization system enhances chiral molecule analysis by recycling pulsed laser radiation with elliptical polarization modulation, improving signal strength and accuracy without high-power lasers, addressing the limitations of existing techniques.
Patent Information
- Application Number
- FR2022005631
- Authority / Receiving Office
- FR · FR
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-06-10
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2042-06-10
AI Technical Summary
Existing chiral molecule analysis techniques, such as circular dichroism and photoelectron circular dichroism, require dense samples and long acquisition times due to weak signals, and increasing laser repetition rates to improve accuracy is costly.
A characterization system using an optical cavity to recycle pulsed laser radiation, combining elliptical polarization modulation with electron detection to enhance the chiroptical signal, allowing lower power lasers to achieve higher effective average power and faster measurements.
The system increases the chiroptical signal level and measurement accuracy while reducing costs by recycling laser pulses, enabling rapid and precise chirality determination of chiral molecules.
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Abstract
Description
Title of the invention: System for characterizing chiral molecules with pulse recycling Technical field
[0001] The present invention relates to a system for characterizing chiral molecules.
[0002] The field of the invention is the field of chemical analysis of mixtures of chiral molecules. State of the art
[0003] The analysis of chemical mixtures is an essential tool in many industrial processes, both in R&D and quality control. These molecules exist in at least two forms called enantiomers which are not superimposable on their mirror image, and one of the forms can be toxic.
[0004] Chiral molecules are particularly difficult to analyze. However, these molecules play a crucial role in many industrial fields such as pharmacology, agri-food, agrochemistry, etc., where enantiomeric purity can be of paramount importance. For example, a majority of drugs and pharmaceutical compounds comprise chiral molecules. Since the reaction of an organism to a molecule can depend on its chirality, it is crucial to know the enantiomeric composition of the molecules of these compounds. The enantiomeric excess of a product must be determined with an accuracy of 99.9% before it is marketed.
[0005] A historical technique for the analysis of molecular chirality is based on absorption circular dichroism (CD). By measuring the difference in absorption of right- or left-circularly polarized radiation, information about the chirality of a sample can be obtained. However, CD is a very weak effect, which requires dense (liquid) samples and therefore large amounts of material. It provides weak signals, requiring long acquisitions to obtain a good signal-to-noise ratio.
[0006] To overcome this problem, new types of circular dichroism are being developed. For example, a recognized technique, photoelectron circular dichroism (PECD), consists of the ionization of chiral molecules in a gas sample by circularly polarized radiation. The angular distribution of electrons ejected by ionization has a strong asymmetry along the axis of propagation of the light. Thus, more or fewer electrons are emitted forward or backward depending on the helicity of the light (direction of rotation of the circular polarization) or the enantiomerism of the molecule. This technique can use radiation in the extreme ultraviolet (XUV) range for single-photon ionization, or ultraviolet, visible or infrared laser radiation, in which case the ionization is multi-photon.
[0007] It is also possible to use a variant of PECD, called photoelectron elliptical dichroism (PEELD). In this case, the polarization state is varied continuously by oscillating a natural frequency co. The angular distribution will thus oscillate at multiples of this frequency co. The asymmetric forward / backward signal will oscillate at odd multiple frequencies, and the amplitude of these oscillations gives the chiral composition of a measured sample. This synchronous detection gives a much better signal-to-noise ratio.
[0008] Generally, the accuracy of chirality measurements depends directly on the level of the detected signal. The higher this signal, the higher the signal-to-noise ratio.
[0009] For this reason, methods based on the use of pulsed lasers benefit greatly from increasing the repetition rate of these light sources. The higher the number of pulses delivered, the more accurate the measurement will be. However, increasing the repetition rate of a laser requires an increase in the average power of the laser, which results in significant additional costs. Indeed, the cost of a laser source depends heavily on the power delivered. Statement of the invention
[0010] An aim of the present invention is to propose a characterization system capable of overcoming these problems.
[0011] An aim of the present invention is to propose a measuring system allowing the measurement of the chirality of molecules in a precise and rapid manner.
[0012] It is also an aim of the present invention to propose a measuring system whose operating cost is controlled.
[0013] At least one of these objectives is achieved with a system for characterizing chiral molecules, comprising:
[0014] - an interaction zone arranged to receive a sample of chiral molecules;
[0015] - a laser source arranged to emit pulsed laser radiation, the radiation laser being adapted to interact with molecules in the interaction zone;
[0016] - a polarization modulator arranged to polarize the laser radiation elliptically;
[0017] - an optical cavity configured to redirect the pulsed laser radiation into the interaction zone several times;
[0018] - detection means arranged to measure a chiroptical signal produced by the interaction between molecules and laser radiation; and
[0019] - determination means arranged and / or programmed to determine at least the chirality of the molecules from the detected chiroptical signal.
[0020] The characterization system according to the present invention makes it possible to determine the chirality of molecules thanks to the interaction of an elliptically polarized laser beam with these molecules. By recycling the laser pulses, a lower power laser can be used while increasing the effective average power and the effective rate. The interactions of the molecules with the different beams add up and produce a signal corresponding to the superposition of several essentially identical signals. Indeed, by reversing the direction of propagation of the laser beam in the optical cavity, the direction of rotation of the polarization of the electromagnetic field is also reversed. This double inversion leads to an increase in the signal level, thus making it possible to reduce the measurement time. In addition, the accuracy of the measurement is also increased thanks to the increase in the effective average power.Thanks to the simple and easy-to-implement optical assembly of the optical recycling cavity, a powerful and rapid characterization system can be obtained at a moderate cost, without the need to integrate a high average power pulsed laser source.
[0021] An example of implementation of the invention is based on the elliptical dichroism of electrons, or photoelectrons, measured continuously. Thus, the evolution of the distribution of electrons emitted forward and backward, and therefore of its asymmetry, is measured as a function of time and as a function of the polarization state of the electromagnetic radiation. By varying the ellipticity of the polarization of the radiation continuously and periodically as a function of time, the continuously measured signal is a periodic signal subsequently allowing simpler and faster analyses of the sample of molecules.
[0022] According to one embodiment, the interaction comprises an ionization of the molecules, and the detection means may comprise an electron detector arranged to detect a distribution of electrons produced by the ionization emitted in front of and behind the interaction zone relative to the axis, z, of propagation of the laser radiation.
[0023] In the context of the present invention, the term “electron distribution” can mean both: - a number of electrons, obtained by simple counting, - a spatial distribution of electrons, or - an angular distribution of electrons,
[0024] the electrons being emitted towards the front and towards the rear of the ionization zone relative to the axis of propagation of the ionizing radiation.
[0025] Thus, in the context of the present invention, the chirality of the molecules of the sample can be determined from the number of electrons emitted forward and the number of electrons emitted backward. Since the optical cavity makes it possible to reverse both the direction of propagation of the light and the direction of rotation of its polarization (helicity), the electron asymmetry on the detector has the same sign each time the laser radiation passes through the sample, making it possible to increase the signal.
[0026] Advantageously, the optical cavity can be formed from two spherical mirrors.
[0027] The mirrors are arranged so that the light beam reflected on the mirrors is always focused essentially at the same place and makes the highest possible number of round trips.
[0028] It is particularly important that the diameters of the mirrors are large compared to the initial size of the laser beam.
[0029] Alternatively, the optical cavity can be formed by two plane mirrors.
[0030] According to a variant, each of the plane mirrors can be combined with a lens.
[0031] The choice of the construction of the optical cavity depends in particular on the shape that one wishes to give to the beam in the cavity (for example, focusing or not in the cavity).
[0032] According to one embodiment, the polarization modulator can be arranged to vary the polarization ellipticity of the laser radiation continuously as a function of time.
[0033] According to one example, the polarization modulator may comprise a quarter-wave plate arranged to be rotated around the axis, z, of propagation of the laser radiation.
[0034] Such a modulator is particularly simple to implement, compact and economical. Commercially available motorized rotation devices can be used with the quarter-wave plate.
[0035] It is also possible to use other types of polarization modulators, such as electro-optical elements (Pockels cell, etc.).
[0036] According to a variant, the ellipticity of the polarization can be modulated by interferometric control of the two polarization components.
[0037] According to one example, the electron detector may comprise at least one velocity vector imager.
[0038] According to one embodiment, the pulsed laser source may be a pulsed laser source delivering femtosecond pulses.
[0039] According to a non-limiting example, the wavelength of the pulsed laser source may be in the range from ultraviolet to visible.
[0040] According to an advantageous variant, the pulsed laser source can be a high-speed fiber laser.
[0041] Such laser sources are commercially available and are easy to implement with the system according to the invention.
[0042] Generally, the wavelength of the electromagnetic radiation source determines the type of ionization of the molecules, either single-photon ionization or multi-photon ionization.
[0043] Indeed, pulsed laser sources having wavelengths in the visible, infrared or ultraviolet range produce radiation capable of causing multi-photon ionization. On the other hand, far or extreme ultraviolet light sources can induce single-photon ionization, whether they are continuous or pulsed.
[0044] Typically, the determining means comprise at least one computer, a central or computing unit, an analog electronic circuit (preferably dedicated), a digital electronic circuit (preferably dedicated), and / or a microprocessor (preferably dedicated), and / or software means.
[0045] The system according to the invention can be used for measuring the chirality of molecules in the field of pharmacology, agri-food or even pesticides. Indeed, these industries, among others, need reliable and rapid chiral analysis techniques, particularly in the development phases of new compounds, in order to identify, for example, the reaction products and their enantiomeric excesses.
[0046] According to a first example of application, it can be very useful to monitor in real time the composition of a mixture in which a chemical reaction is taking place. This reaction monitoring can be carried out directly with the system according to the invention, in particular by collecting the vapors emitted by the tank in which the reaction is taking place.
[0047] According to a second example of application, it can be very useful to carry out chiral analysis measurements in series, in particular during the synthesis of multiple products with very similar structures in research and development, where the reliability and speed factors are very important. For example, a basic molecule can be substituted with different functional groups to converge towards a compound having optimal desired properties. In this specialized field, the intermediate compounds to be measured are often generated in small quantities, a constraint that the system according to the present invention proposes to respect.
[0048] According to a third example of application, the chiral analysis is carried out in quality control and in particular at the end of production. Ideally, very regular, or even continuous, sampling of very small quantities of products to be analyzed with real-time analysis makes it possible to quantify the enantiomeric excess and its evolution over time.
[0049] According to a fourth example of application, it is possible to carry out screening tests, where for example a very large number of catalysts or operating conditions (temperatures, pH, etc.) are used to direct a chemical reaction to preferentially produce one enantiomer rather than another.
[0050] More generally, the measuring system according to the invention can be used for the analysis of the enantiomeric purity of a sample of chiral molecules. Description of the figures and embodiments
[0051] Other advantages and characteristics will appear on examining the detailed description of non-limiting examples, and the attached drawings in which: - [Fig.l] is a schematic representation of a non-limiting exemplary embodiment of a system according to the invention; - [Fig.2] shows examples of focal point measurements in the optical cavity of a system according to one embodiment; - [Fig.3] schematically represents the interaction of laser radiation with a sample in an optical cavity of a system according to the invention; - [Fig.4] shows examples of measurements of chiroptical signals with a system according to the invention; and - [Fig.5] presents results of measurements carried out with a system according to the invention.
[0052] It is understood that the embodiments which will be described below are in no way limiting. In particular, it will be possible to imagine variants of the invention comprising only a selection of characteristics described below isolated from the other characteristics described, if this selection of characteristics is sufficient to confer a technical advantage or to differentiate the invention compared to the state of the prior art. This selection comprises at least one preferably functional characteristic without structural detail, or with only a part of the structural details if this part alone is sufficient to confer a technical advantage or to differentiate the invention compared to the state of the prior art.
[0053] In particular, all the variants and all the embodiments described can be combined with each other if nothing prevents this combination from a technical point of view.
[0054] In the figures, elements common to several figures may retain the same reference.
[0055] [Fig.l] is a schematic representation of a non-limiting exemplary embodiment of a measuring system according to the invention.
[0056] The system 1, shown in [Fig.l], comprises a pulsed laser source 10.
[0057] According to one example, this laser source 10 is a frequency-doubled fiber laser source (for example, 515 nm) by means of non-linear crystals. The pulses emitted are femtosecond pulses, for example of the order of 350 fs to a rate of 100 kHz. The energy per pulse is of the order of 20 pJ for an average power of 2W. With such a laser source, the ionization of molecules is a resonant multi-photon ionization.
[0058] There are different types of femtosecond laser sources that can be used in the context of the invention, which are well known to those skilled in the art and will not be detailed here.
[0059] The system 1 further comprises a reservoir 11 of molecules. The mixture of molecules in the reservoir 11 may be mono- or multi-species. The mixture may be present in solid, liquid or gaseous form. The reservoir 11 may be, for example, a vial.
[0060] A sample of molecules is conveyed, in gaseous form, through a gas conduit 12 to an interaction or ionization zone 13. To obtain the gaseous form when the mixture in the reservoir 11 is solid or liquid, the reservoir 11 can, for example, be heated.
[0061] The ionization zone 13 is generally implemented by a vacuum chamber 18 into which the gas is introduced.
[0062] The light beam 14 emitted by the laser 10 is directed towards and focused in the interaction zone 13 using known beam forming means, such as mirrors and lenses, represented by the reference 15 in [Fig.l].
[0063] The beam forming means 15 may in particular comprise a focusing lens of focal length f. With reference to [Fig. 1], the beam 14 is focused by the lens 15 so that the focus is in the interaction zone 13. The light intensity at this first focus is for example of the order of 1012-1013 W / cm2.
[0064] The system 1 according to the invention also comprises an optical cavity 19, arranged such that the interaction zone 13 is located inside the cavity 19. In the example shown in [Fig.l], the optical cavity 19 comprises two mirrors 20a, 20b arranged inside the vacuum chamber 18. The mirrors 20a, 20b are focusing spherical mirrors of focal length f1 and f2, respectively.
[0065] The light beam 14, after having been focused in the interaction zone 13 by the focusing lens 15, diverges and arrives at the second mirror 20b. The second mirror is positioned at a distance of 2f2 from the focal plane of the lens 15. The beam 14 is thus reflected by the second mirror 20b and refocused in a focal plane corresponding to the first focus of the lens 15. After having been focused in the second focus of the second mirror 20b, the beam diverges and arrives at the first mirror 20a positioned at a distance of 2fi from the focal plane. The beam 14 is thus reflected by the first mirror 20a and again refocused at the same location as the first and second foci. The mirrors 20a, 20b are aligned so that the light beam 14 goes back and forth in the cavity 19 a large number of times. For this, the initial beam diameter must be small compared to the diameters of mirrors 20a, 20b and lens 15.
[0066] According to one example, with a frequency-doubled laser source (515 nm, 100 kHz, 350 fs) as described above, a first mirror 20a with a focal length of 175 / 2 mm and a second mirror 20b with a focal length of 150 / 2 mm, the two mirrors having a diameter of 25.4 mm, it is possible to obtain approximately ten reflections per mirror, corresponding to approximately twenty foci, before the beam 14 leaves the cavity 19.
[0067] [Fig.2](a) shows measurements of foci in the optical cavity 19. For this, a sampling blade is placed in the middle of the optical cavity 19 to extract a part of the beam 14. The light intensities in seven foci are thus imaged. [Fig.2](b) shows the horizontal profiles 40 of the light intensities of [Fig.2](a), as well as Gaussian curves 41 of equal widths. It can be seen that the size of the different foci varies only very little after multiple back and forth movements of the beam. This means that the beam 14 remains properly focused after these back and forth movements.
[0068] The system 1 according to the invention further comprises a polarization modulator 16. Preferably, the polarization modulator 16 is arranged to polarize the laser radiation 14 elliptically and to vary the ellipticity of the polarization continuously as a function of time. Here the polarization modulator 16 is composed of a quarter-wave plate rotating at 45° / s.
[0069] The rotation of the quarter-wave plate can be carried out by any means known to those skilled in the art, in particular using a motorized plate support.
[0070] When the laser radiation interacts with the molecules present in the ionization zone, the molecules are ionized by ejecting electrons. Preferably, at least one molecule is ionized per laser pulse. The electrons are emitted in different directions. Due to the chirality of the molecules, the angular and / or spatial distribution of the emitted electrons is asymmetric, meaning that more electrons are emitted forward than backward, or more electrons are emitted backward than forward.
[0071] Still with reference to [Fig.l], the system 1 according to the invention further comprises electron detection means arranged to detect the electrons, or photoelectrons, produced by the ionization of the molecules and emitted in front of and behind the ionization zone 13 relative to the z axis of propagation of the light. In the exemplary embodiment shown, these detection means are symbolized by plates 17a, 17b positioned in front of and behind the ionization zone 13.
[0072] Electron detection means include, for example, an electron velocity map imaging (VMI) spectrometer. Such a VMI spectrometer images and converts the electron angular and / or spatial distribution into an optical signal that can be measured by a camera.
[0073] Other electron detectors are, for example, detectors directly measuring the number of electrons emitted forward and backward by guiding them using a magnetic field on two detectors.
[0074] When a VMI spectrometer is implemented, the spatial distribution of electrons S(x,z,e), which depends on the position (x,z) on the detector and the ellipticity of the polarization of the laser beam e, is measured. By using circular or elliptical polarization, electrons are observed preferentially leaving behind (-z direction) or in front (+z direction) relative to the z direction of propagation of the laser beam. It is then advantageous to observe the antisymmetric signal ASYM(x,z,e) = l / 2(S(x,-z,e)-S(x,z,e)). The sign of this signal reverses if the direction of propagation z of the light is reversed: ASYM(x,+z,e)= - ASYM(x,-z,e). Furthermore, using a polarization modulator oscillating at frequency co, the asymmetric angular distribution of electrons ASYM is modulated in time, notably at the natural frequencies coi = l / 2co and co3 = 3 / 2co, at each position (x,z): ASYM(x,z,cüi) and ASYM(x,z,co3).
[0075] When the light beam 14 travels back and forth in the optical cavity 19, thus producing a sequence of pulses, the polarization state of the light beam 14 is reversed (the ellipticity changes sign) at the same time as its direction of propagation. The asymmetric signal being determined by this direction of rotation of the polarization of the light, it reverses when the ellipticity changes sign: ASYM(x,z,e) = - ASYM(x,z,-e). Thus, by reversing both the direction of propagation and the sign of the ellipticity of the polarization at each passage of the beam in the sample, the optical cavity 19 makes it possible to maintain a signal of the same sign since ASYM(x,z,e) = ASYM(x,-z,-e).
[0076] [Fig. 3] illustrates passages of the laser beam 14 in the optical cavity. The beam 14, initially having a left circular polarization 40 and propagating in the +z direction, changes its sign of polarization and direction of propagation at each reflection. The polarization thus changes from left circular 40 to right circular 41, and the direction of propagation from +z to -z. The angular and / or spatial distribution of electrons is schematically indicated by squares 42. The total distribution generated by the entire sequence of laser pulses is practically identical to a distribution generated by a single pulse. The distribution generated by all the pulses has a better signal-to-noise ratio, as will be demonstrated below.
[0077] [Fig.4] represents average photoelectron distributions S(x,z) 33 and asymmetric ASYM(x,z,cüi) and ASYM(x,z,co3) 34 for different numbers of foci (1, 3, 5, 7 and 19 foci), i.e. back and forth of the light beam in the cavity. The photoelectron distributions were imaged with an electrostatic lens in velocity vector imaging mode of the photoelectrons produced. observes imaging of photoelectron distributions practically independent of the number of foci used.
[0078] The system 1 according to the invention also comprises a determination device (not shown in [Fig.l]), such as a computer. This device is in particular arranged to determine the chirality of the molecules from the spatial or angular distribution of electrons detected continuously as a function of time.
[0079] [Fig.5] shows results of measurements carried out with a system according to the invention.
[0080] [Fig.5](a) shows the evolution of the total photoelectron signal as a function of the number of foci. It can be seen that the signal increases almost proportionally to the number of passages of the beam in the optical cavity.
[0081] Curve 35 of [Fig.5](b) shows the evolution of the dispersion of 25 measurements of 8 s, as a function of the total signal measured. This dispersion is calculated as the standard deviation, and represents the noise of the measurement. Curve 36 represents an adjustment of curve 35 in 1 / Vx.
[0082] It can be seen from Figures 5(a) and 5(b) that the more the number of beam passes through the cavity increases, the more the noise level decreases by a factor close to 1 / VN, with N the number of passes. However, the dependence on 1 / Vx is expected for any measurement for which the acquisition time is increased by a factor x. This demonstrates that performing N passes is equivalent to increasing the measurement time by a factor N. The pulse recycling principle, implemented by the measurement system according to the present invention, therefore makes it possible to increase the signal level by a factor greater than 10, and to obtain an improvement in accuracy by a factor of approximately 3, equivalent to a measurement with an acquisition time 10 times longer, without using a more powerful and more expensive laser. Increasing the signal level also makes it possible to reduce the measurement time.
[0083] Of course, the invention is not limited to the examples which have just been described and numerous adjustments can be made to these examples without departing from the scope of the invention.
Claims
Claims
1. System (1) for characterizing chiral molecules, comprising: - an ionization zone (13) arranged to receive a sample of chiral molecules; - a laser source (10) arranged to emit pulsed laser radiation (14), the laser radiation being adapted to ionize the molecules in the ionization zone (13); - a polarization modulator (16) arranged to polarize the laser radiation (14) elliptically; - an optical cavity (19) configured to redirect the pulsed laser radiation into the ionization zone several times; - detection means (17a, 17b) comprising an electron detector, arranged to detect a distribution of electrons produced by the ionization emitted in front of and behind the ionization zone (13) relative to the axis, z, of propagation of the laser radiation (14);and - determination means arranged and / or programmed to determine at least the chirality of the molecules from the detected electron distribution.;
2. System (1) according to claim 1, characterized in that the optical cavity (19) is formed of two spherical mirrors (20a, 20b).
3. System (1) according to any one of the preceding claims, characterized in that the polarization modulator (16) is arranged to vary the polarization ellipticity of the laser radiation (14) continuously as a function of time.
4. System (1) according to the preceding claim, characterized in that the polarization modulator (16) comprises a quarter-wave plate arranged to be rotated around the axis, z, of propagation of the laser radiation (14).
5. System (1) according to any one of the preceding claims, characterized in that the electron detector comprises at least one velocity vector imager.
6. System (1) according to any one of the preceding claims, characterized in that the pulsed laser source (10) is a femtosecond pulsed laser source.