Wide dynamic range magnetic field cycler and ultra portable optical nanodiamond hyperpolarizer
11531076 · 2022-12-20
Assignee
Inventors
- Ashok Ajoy (Fremont, CA, US)
- Emanuel Druga (Castro Valley, CA, US)
- Alexis Morabe (Temecula, CA, US)
- Kristina Song Liu (Berkeley, CA, US)
- Alexander Pines (Berkeley, CA)
- Raffi Nazaryan (Tujunga, CA, US)
Cpc classification
G01R33/282
PHYSICS
A61B5/055
HUMAN NECESSITIES
International classification
G01R33/28
PHYSICS
G01R33/34
PHYSICS
Abstract
A system can include: a superconducting or permanent magnet; a high field portion corresponding to the superconducting or permanent magnet, wherein the high field has a range of 0.1-20 T; a low field portion positioned outside of the superconducting or permanent magnet, wherein the low field has a range of 0.01 nT-100 mT; a shuttling mechanism configured to deliver a sample between the low field portion and the high field portion; and a polarization sub-assembly configured to hyperpolarize the sample while the sample is within the low field portion. A device can be configured to cause nuclear spin hyperpolarization in diamond particles such that the hyperpolarization is transferable to at least one of an external liquid or an external solid. A process of hyperpolarizing substances can include applying optical illumination to the substance, irradiating the substance with a series of microwave signals as one of either a single signal or as a frequency comb to hyperpolarize the nuclei in the substance, and relaying polarization to nuclear spins of one of a surrounding solid or fluid.
Claims
1. A system, comprising: a superconducting or permanent magnet; a high field portion corresponding to the superconducting or permanent magnet, wherein the high field has a range of 0.1-20 T; a low field portion positioned adjacent a magnetic shield, the magnetic shield between the low field portion and the superconducting or permanent magnet, wherein the low field has a range of 0.01 nT-100 mT; a shuttling mechanism connected to the high field portion and the low field portion configured to transport a sample between the low field portion and the high field portion; and a polarization sub-assembly comprising a microwave source configured to apply microwaves to the sample and a laser configured to continuously apply laser light to the sample simultaneous to the microwaves to hyperpolarize the sample while the sample is within the low field portion.
2. The system of claim 1, wherein the shuttling mechanism includes a servo motor.
3. The system of claim 1, wherein the shuttling mechanism includes a pneumatic motion device.
4. The system of claim 1, wherein the substance includes diamond particles in single-crystal, or micro-sized or nano-sized powder.
5. The system of claim 1, wherein the shuttling mechanism includes: a conveyer belt; a rod; and a tube attached to the rod and configured to travel along the conveyer belt.
6. The system of claim 5, wherein the rod is made of carbon fiber.
7. The system of claim 1, wherein the shuttling mechanism has a shuttling speed up to 2 m/s with an acceleration of up to 30 m/s.sup.2.
8. The system of claim 1, wherein the superconducting magnet is a nuclear magnetic resonance (NMR) magnet.
9. A method of hyperpolarizing substances, comprising: applying optical illumination to a substance; irradiating the substance with a series of microwave signals as one of either a single signal or as a frequency comb to hyperpolarize the nuclei in the substance; and coaxing hyperpolarization into nuclear spins of one of a surrounding solid or fluid.
10. The method of claim 9, wherein the substance includes diamond particles in single-crystal, or micro-sized or nano-sized powder.
11. The method of claim 10, where the signal from the .sup.13C in the diamond can be sign inverted with high fidelity.
12. The method of claim 11, wherein diamonds are used as agents to background suppress NMR/MRI signals.
13. A portable hyperpolarizer, comprising: a sample holder configured to hold a sample; a laser source configured to direct optical illumination at the sample in the sample holder; at least one microwave generator to direct microwaves at the sample, such that the optical illumination and the microwaves cause hyperpolarization in the sample: and a housing configured to support the sample holder, the laser diode, and at least one microwave generator.
14. The hyperpolarizer of claim 13, further comprising an interface to at least one of either a nuclear magnetic resonance spectrometer or a magnetic resonance imaging machine.
15. The hyperpolarizer of claim 13 configured to serve as a contrast agent for magnetic resonance imaging (MRI).
16. The hyperpolarizer of claim 13, wherein the housing is compact, rigid, and lightweight.
17. The hyperpolarizer of claim 16, wherein the housing is made of aluminum.
18. The hyperpolarizer of claim 13, wherein the laser source includes a laser diode.
19. The hyper polarizer of claim 13, wherein the laser source includes a multiple fiber coupled laser configuration.
20. The hyperpolarizer of claim 13, wherein the substance includes diamond particles in single-crystal, or micro-sized or nano-sized powder.
21. The hyperpolarizer of claim 13, wherein the hyperpolarization in the sample is transferable to one of either an external solid or an external liquid.
22. The hyperpolarizer of claim 13 configured with tubing for liquid flow of polarized diamond samples and surrounding liquid to and from the device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
(17)
(18)
(19)
(20)
(21)
(22)
(23)
(24)
(25)
(26)
(27)
(28)
(29)
(30)
(31)
(32)
(33)
(34)
(35)
(36)
(37)
(38)
(39)
(40)
(41)
(42)
(43)
DETAILED DESCRIPTION
(44) Certain embodiments of the disclosed technology are generally directed to a fast field cycling device capable of sweeping of approximately 10 orders of magnitude of magnetic field from 1 nT-7 T in under 700 ms. This presents a versatile platform to combine the rich power of coherent quantum control and storage at low and high magnetic fields. In particular, the low field advantages of low anisotropy, fast spin manipulation and rapid entanglement growth; and high field gains in spin lifetimes, spin specific control and efficient inductive measurement. The device consists of high-speed sample shuttling between a superconducting magnet and a magnetic shield, with the capability to access arbitrary fields in between with high precision. While generally applicable in a host of problems in quantum information and condensed matter, we employ the device along with a novel technique of dynamic nuclear polarization to determine the spin lifetimes of quantum memories consisting of .sup.13C spins in diamond.
(45) Certain embodiments of the disclosed technology are generally directed to a device that is capable of sweeping magnetic fields over a ten order-of-magnitude dynamic range from 1 nT-7 T in under 700 ms. The device works by physically transporting (shuttling) a sample precisely and at high speed between low (1 nT-10 mT) and high field (7 T) centers placed 830 mm apart, exploiting high mechanical precision (50 μm) to achieve arbitrary tunable fields in the fringing field between the two centers. The sample shuttling takes place faster than the T.sub.1 times of nuclear spins in a variety of physical systems, which coupled with high resolution inductive detection at 7 T make the system ideally suited to studying nuclear spins at different fields. The system also provides the ability for spin manipulation at the low and high field centers.
(46) There are various versatile applications of the disclosed device. Coupled to the optically addressable NV center qubit, .sup.13C spins have garnered attention as forming viable nodes of a quantum information processor due to their long lifetimes, and the fact that they can be rapidly and directly manipulated by the NV center. Their utility as memories have enabled wide gains in quantum sensing, both with respect to sensing resolution and sensitivity—and especially compelling for nanoscale MRI experiments at high fields. However, while their attractive properties stem from their long spin T.sub.1 lifetimes, there have been a lack of experiments studying the factors affecting them. Certain embodiments of the disclosed technology are directed to using a novel low field dynamic nuclear polarization (DNP) technique to enhance the bulk .sup.13C polarization by about five orders of magnitude at 8 mT and employing the unique field-cycling ability of the instrument, measure the first field-dependent T.sub.1 relaxometry of .sup.13C spins in diamond over three orders of magnetic field.
(47) The lifetimes of .sup.13C spins can be determined by an unambiguous inductive measurement of the bulk nuclear magnetization. In contrast to other, more indirect measurements through closeby NV centers via population swapping and optical readout, this allows one to probe even extremely weakly coupled nuclei, and perform measurements at high fields (7 T) where electronic spin control is otherwise challenging. In order to boost the .sup.13C bulk polarization, a novel optical dynamic nuclear polarization technique can be used to enhance it to >800 T level at a field of 8 mT, a gain of about five orders of magnitude. This allows strong, single-shot measurements of .sup.13C magnetization by inductive readout at 7 T. Remarkably since low-field for the polarization transfer is exploited, the technique is orientation independent—e.g., does not require any alignment of the sample with respect to the field—and can therefore be employed on powdered diamond and nanodiamonds.
(48)
(49) In certain embodiments, the field cycler consists of a shuttling tower constructed over a high field (7 T) superconducting magnet with a low field magnetic shield positioned below it (see
(50)
(51) Certain embodiments of the disclosed technology incorporate special features to maximize sample fill factor for highly efficient inductive detection, and low-field quantum control through radiofrequency or microwave excitation. For minimum position/velocity control possible clearance to excitation coils at both fields, and low vibration upon motion jerk it is essential that the shuttling rod be aligned perfectly parallel to the magnet over the entire distance of travel. Alignment better than 1 mdeg can be obtained through a series of design implementations. Firstly, the entire shuttling tower (e.g., 80/20 1530-S) containing the actuator, motor and twin carriage is on an XY tunable platform (see
(52)
(53) The sample is pressure-fit to the carbon fiber rod for rapid attachment and detachment. The lower end of the rod contains a ceramic connection for attaching the NMR tube carrying the sample (see
(54)
(55) Shuttling and inductive detection can be synchronized (see
(56) Field cycling methods have long been developed to overcome the shortcoming that inductive detection is only operated at one certain field while many phenomena, which can be probed by it, are magnetic field-dependent, for instance, spin relaxation and spin hyperpolarization. There are several approaches of field cycling, including fast (switch) filed cycling, sample shuttling (pneumatic and mechanical).
(57) Fast field cycling exploits specialized power supply and switched-coil to rapidly switch magnetic fields. But it is challenging for the fast field cycling system to exceed 2 T magnetic field, and additionally because of rapid switching of electric current and magnetic hysteresis, the resolution and sensitivity is limited.
(58) Field cycling methods employing sample shuttling have a rich history. They have found a niche for protein relaxometry, where they can reveal important information about intramolecular motion. Compared to conventional pneumatic shuttlers, implementations of the disclosed technology have better repeatability in both shuttling time and shuttling position, and gradual low-vibration motion stop. Pneumatic shuttlers use compressed air to operate shuttling motion, which creates inconstancy on shuttling time. While providing higher speed, compressed air causes vibration on samples when the shuttler starts and stops. 0.1-1 s of time is applied to wait for the shuttler to stabilize, which compromises the advantage of rapid shuttling. On the other hand, the belt driven linear actuator as disclosed herein has a thrust force capacity of 295N, under which platform, a variety of samples can be loaded and measured with high stability. The experiments are stable and reproducible over months of operation.
(59) Devices in accordance with the disclose technology differ from previous mechanical shuttler implementations in certain key areas. Embodiments can employ mechanical sample shuttling, which have advantages over pneumatic shuttling, but unlike the previous works however, the disclosed devices move the sample outside the magnet and into a shield, allowing orders of magnitude wider dynamic range in the field cycling and approachability to more experimental apparatus, such as low field shield and zero filed pulser etc. Since implementations include shuttling towards the ground, it also allows easy access to optical radiation and microwave application, that can be employed for polarization transfer.
(60) Modifications to conventional NMR probe design can be made to accommodate fast sample shuttling (see
(61) Certain embodiments can include fabricating saddle coils for NMR detection that are compatible with shuttling, yet optimized to the sample to provide large fill factors. The coils are wrapped on a Quartz tube matched to the tube being shuttled such that the sample tightly fills the entire coil volume. The coils are fabricated by cutting them out of flexible adhesive copper foil (e.g., Venture Tape, thickness 31.75 μm) (see
(62) The low-field center at the lower end of the field cycling platform consists of a magnetically shielded volume (see
(63) In several embodiments of low-field optical polarization transfer from NV centers to .sup.3C nuclear spins in diamond, an iron shield is employed. Laser light is irradiated from the bottom of the test tube holding the sample (see
(64) In some embodiments, a cryogenic system was constructed for sample fast freezing to increase low field T1. This allows for investigation of the field dependence of the T1 of frozen liquids as well as its applications. The solid form of various substances have relaxation times orders of magnitudes larger. For instance, pyruvate which was demonstrated as an important probe of cellular glycolysis in cancer, has T1 relaxation time at magnetic fields greater than 7 T of less than 49 seconds at 310K, compared with 3200 seconds 4.2K. This increase in T1 can be crucial for potential hyperpolarization transfer outside a hyperpolarized substance and into an external frozen liquid. In the solid state, longer relaxation time will enable extending the duration (and therefore the amount) of polarization build up as well as the diffusion of the polarization into the solid liquid. Longer T1 will also enable quantum applications.
(65)
(66) Recently, the first mechanism of optical DNP in diamond particles, hyperpolarizing .sup.13C nuclear spins in microdiamonds was developed, opening the door to the optical hyperpolarization of liquids brought in contact with these high surface area particles. The embodiments here harness the remarkable versatility of this DNP mechanism to develop a compact, along the size of a laptop computer, inexpensive in the range of under $3000, solid-state “nanodiamond hyperpolarizer” that is easily interfaceable with any existing NMR/MRI system both at low and high fields. It is capable of hyperpolarizing .sup.13C nuclei in diamond micro- and nanoparticles diamond, in the range of 5-200 nm size, to approximately 0.4% bulk polarization in under one minute. The ease of construction and low cost of the device opens several avenues for harnessing the biocompatible surface-functionalized nanodiamonds as MRI tracers, as demonstrated here, besides highlighting its strong potential for the optical hyperpolarization of liquids.
(67) .sup.13C hyperpolarization is generated by the simultaneous and continuous application of laser irradiation that polarizes the NV center to the m.sub.s=0 sublevel and frequency swept microwave (MW) irradiation that transfers it to the .sup.13C nuclei, at low background polarizing fields B.sub.pol=1-30 mT. At these fields, the embodiments work in the regime where the MW excitation is nuclear spin level selective, for example Ω.sub.e<<w.sub.L<A, where Ω.sub.e is the electron Rabi frequency, w.sub.L=γ.sub.n|B.sub.pol| is the nuclear Larmor frequency, and A is the hyperfine coupling to the .sup.13C nuclear spin in the lattice. The MWs are set to sweep the entire NV ESR spectrum, driving successive rapid adiabatic passages (RAPs) between the m.sub.s=0 and m.sub.s=±1 manifold and back, hyperpolarizing the .sup.13C nuclei in a direction solely dependent on the direction of the MW sweep. Indeed, the .sup.13C polarization is aligned or anti-aligned with B.sub.pol depending on whether the MWs are swept from low-to-high or high-to-low frequency respectively. Technologically however, it is the remarkable and somewhat surprising aspects of the mechanism that facilitate miniaturization of the hyperpolarizer: the laser excitation required is of a wide wavelength range, and low power (≈5 mW/mm.sup.2) and can be produced by low-cost LEDs; the MW power is exceeding low (≈50 mW/mm.sup.2), with a frequency range and power comparable to commercial Wi-Fi routers; and the low polarizing field 1-30 mT can be produced by simple permanent magnets with no requirements for sample alignment nor constraints on field homogeneity.
(68) The discussion now turns to the implementational flexibility. The embodiments work at low polarizing fields chiefly to mitigate the strong inhomogeneous broadening, by B=2γ.sub.e|B.sub.pol|, of the NV center electronic spectrum stemming from the orientation dependence of the NV center resonance frequencies, and the fact that all NV orientations are sampled in a random powder. The relatively narrow resulting spectral widths, typically B=100-700 MHz around ≈2.9 GHz, can be coherently swept over by MWs generated by any of the plethora of inexpensive broadband sources and amplifiers in this range (S-band). The optimal B.sub.pol is determined by an interplay between technical ease of MW frequency sweeps at lower fields, and the longer spin lifetimes T.sub.1n at higher fields. The .sup.13C hyperpolarization builds up rapidly and approaches ≈0.4% usually in under 60 s of optical pumping, which corresponds to a signal enhancement of ≈ 400 times with respect to the thermal Boltzmann polarization at 7 T. Field inhomogeneity goes only to broaden the ESR spectrum, and does not significantly alter the DNP enhancements. Hyperpolarization occurs along the local B.sub.pol, which need not necessarily align with the detection field, since the sample transfer is, to a good approximation, adiabatic. Moreover, since there are no field alignment requirements, the DNP can be performed in the fringe field of conventional NMR/MRI superconducting magnets.
(69) In one embodiment, experiments were performed at three different fringe field spots of an 800 MHz (Bruker Avance) NMR magnet, obtaining comparable DNP enhancements independent of location. Indeed, the compact size of the device allows easy interfacing with detection magnets, and samples can be accessible both from the top and bottom of the device.
(70) The low requirement for microwave power is a consequence of a need to maintain nuclear selectivity in the RAP transfer, but this also proves to be a significant technological advantage, allowing one to harness inexpensive GaN HEMT transistors developed for the WiMAX band. MWs can be delivered by means of a simple broadband stub antenna, without the need of a cavity or other resonant structures. The ubiquitous availability of voltage controlled oscillator (VCO) sources in the 2-4 GHz band, and their prevalence as chip-scale components, simplifies miniaturization. This contrasts with conventional DNP where sources, both gyrotrons and solid-state ones, are significantly more expensive and substantial resources are required for MW amplification and delivery. The optimal MW frequency sweep rates required for polarization transfer are set by adiabaticity constraints of the RAPs, and are typically in the 50-200 Hz range. This allows use of exceeding simple microcontroller based sawtooth voltage generators, which when interfaced with the VCOs produce the desired MW sweeps.
(71) Indeed, the ease of construction enables the cascading MW sweeps from several (say N) VCO sources simultaneously to enhance the efficiency of polarization transfer. This is because the NV electrons rapidly repolarize optically in t.sub.repol<100 μs, while the slow MW sweeps bottleneck the DNP enhancement F produced by a single VCO. Cascaded sources can provide multiplicative gains ε.fwdarw.Nε, where N is bounded only by limits set by the homogeneous linewidth of the electron spectrum, N≤B=/Δf. Finally, since the entire spectrum produces the identical hyperpolarization sign, any part of it can be swept to produce DNP enhancements, and there is little need for exact frequency matching of the sweep bands.
(72) Optical pumping, used to polarize the NV centers, can be of a wide wavelength range, any visible excitation λ≈<575 nm). Importantly, the DNP mechanism requires that the illumination power be low ≈5 mW/mm.sup.2. This is because one needs to ensure that the NV centers are not significantly repolarized during each RAP polarization transfer event. There are almost no requirements on the mode quality, or the alignment of the beam if the particles are uniformly illuminated. Moreover, the excitation is applied completely in cw-mode, without the need for pulsing or any synchronization circuitry. Consequently, the hyperpolarizer can be built from compact LED sources widely available, and the light delivered directly from the source with no intervening optics. Indeed, several embodiments may have the illumination occur by means of optical fibers. The use of IR-visible coatings can potentially allow in-vivo excitation and DNP of the particles.
(73) Room-temperature DNP can be carried out with the diamond particles both dry as well as suspended in solution. There is a remarkably wide range of solutions in which the diamonds are hyperpolarizable, including common solvents and biologically relevant fluids.
(74) The versatility, ease of construction and operation of the nanodiamond hyperpolarizer open compelling possibilities especially for biosensing imaging modalities constructed out of optically hyperpolarized, surface functionalized, diamond particles. This may be in theranostics both in-vivo and in-vitro. From a technological standpoint, the device itself can easily be further miniaturized into palm top hyperpolarizers.
(75) In this manner, the embodiments demonstrate an inexpensive compact room-temperature diamond particle hyperpolarizer. The device is extremely easy to construct and operate, and can be interfaced with almost any existing NMR system. The large .sup.13C polarizations, and high particle surface areas (≈>6700 mm.sup.2/mg for 100 nm particles), can be potentially exploited to optically hyperpolarize contacting liquids. There may be immediate applications of the device for dual modality optical and MRI imaging with fluorescent diamond particles, opening compelling possibilities for disease detection and targeting in-vivo. The device may have an interface that allows it to connect with one or both of an existing NMR machine or an MRI machine.
(76) In one embodiment, diamond particle hyperpolarization was carried out in a stand-alone device at room-temperature, composed from nonmagnetic solid-state components and requiring zero user maintenance. The embodiment used a modular design that allows a compact and rapid assembly of the various components. The most striking feature was its small footprint (12×10×10 in.), and light weight (<10 lb), making it ultraportable, and compatible with any NMR spectrometer. Indeed, this may be the smallest reported hyperpolarizer across all platforms, a testament to the technological ease of optical DNP at low fields.
(77)
(78) Referring to
(79) The specific embodiments here employ a miniature 1 W 520 nm diode laser in a feedback loop with an integrated thermoelectric cooler for adequate thermal control.
(80) Microwaves are generated by miniature voltage controlled oscillator (VCO) sources 18. Frequency sweeps are produced by controlling the VCO frequency by a homebuilt quadruple channel voltage ramp generator 20 in
(81)
(82) The diamond particle sample is placed at the confluence of the applied laser and microwaves, and in a weak polarizing field. For several experiments, it is most convenient that the natively fringing fields of the NMR/MRI detection magnets are employed for this task. Alternatively, as described in
(83)
(84) In one embodiment, the results of which are shown in
(85)
(86)
(87)
(88) In this manner, a portable dynamic nuclear polarizer is provided. It has a relatively small size, is lightweight and inexpensive, especially when compared to the rather large systems in use today. This uses for such a system include many different applications, including in accelerated chemical analysis such as may be used by pharmaceutical companies or other entities desiring to test substances, or in conjunction with MRI machines to make brighter, faster images with low signal backgrounds. In particular we envison several applications in accelerated tumor detection and cardiac angiography via the use of hyperpolarization generated from the polarizer device.
(89) As discussed above, one method employed in the above hyperpolarizer involves using frequency combs in the microwave irradiation. While the discussion below relates to hyperpolarizing diamond powder, one should note that it is applicable to many different types of substances.
(90) Dynamic nuclear polarization (DNP), which is the ability to polarize (cool) nuclear spins to a spin temperature far lower than Boltzmann levels—has emerged as a technological breakthrough that serves as the starting point for a wide-range of applications, including signal enhanced spectroscopy and imaging and for state initialization in quantum information processing and metrology. Indeed, magnetic resonance (NMR and MRI) signals from hyperpolarized nuclear spins can be enhanced by several orders of magnitude allowing enormous gains, often greater than million-fold, in experimental averaging time. This has opened avenues for the sensitive probing of phenomena, species, and surfaces, whose detection would otherwise have remained intractable.
(91) In its simplest manifestation, DNP involves the use of electrons whose polarization is transferred to the nuclear spins via microwave irradiation, allowing a polarization enhancement ε≈<γ.sub.e/γ.sub.n, where ↓.sub.e,n are the gyromagnetic ratios of the electron and nuclear spins respectively. Thermal contact between the electron and nuclear spin reservoirs is achieved via the applied microwaves. Precise energy matching between the reservoirs allows the optimally rapid rate of polarization transfer α|A|, the hyperfine coupling between the electron and nuclear spins. The NOVEL pulse sequence typifies this where energy matching in the rotating frame is achieved by equalizing the electron Rabi frequency Ω.sub.e and nuclear Larmor frequency ω.sub.L=γ.sub.nB (at magnetic field B), at the Hartmann-Hahn condition Ω.sub.e=ω.sub.L. However, several common (e.g. Nitroxide-based) electron polarizing agents are spin >1/2, and anisotropy leads to severely inhomogeneously broadened electronic linewidths, which scales with the applied field, can be as broad as 1 GHz at high fields (>7 T). Unsurprisingly, precise energy matching to the nuclei is then challenging to achieve. Indeed, DNP traditionally has relied largely on cw-microwave techniques including solid, cross-effects and thermal mixing, where only a part of the broad electron spectrum directly contributes to the obtained enhancement.
(92) In principle however, significant gains in polarization enhancements can be gained by exploiting the full broad electron linewidth for DNP via more sophisticated quantum control on the electron spins, whereby every electron “packet” directly contributes to the DNP process. Since savings in experimental time scale αε.sup.2, methods to increase hyperpolarization efficiency will directly translate to dramatically accelerated spectroscopy and imaging. Indeed, a surge in recent interest in such control techniques has been fueled
(93) by advances in instrumentation (sources and synthesizers) that enable the rapid and coherent manipulation of electrons at high fields. Particularly attractive amongst them is the use of frequency or field swept techniques, such as those using integrated solid effect (ISE), that are suited to exploiting the wide electron bandwidth while only requiring modest microwave power.
(94) The DNP process underlying these techniques can be described as traversals of a level anti-crossing (LAC) in electronuclear dressed basis shown in
(95) The embodiments here employ a simple method to overcome this bottleneck, increasing the effective number of polarization transfer events while maintaining the same optimal sweep adiabatic rates set by Landau-Zener conditions. The embodiments involve a swept microwave frequency-comb, that coherently and simultaneously sweeps the entire electron linewidth β at d, while maintaining adiabaticity for each sweep over an individual electron packet as illustrated by
(96) While the method is very general, for purposes of understanding the application to the hyperpolarization of .sup.13C nuclei in microdiamond powder via optically polarized electron spins associated with Nitrogen Vacancy (NV) center defects intrinsic to the diamond.
(97) There has been long standing interest in hyperpolarized micro- and nanodiamond particles, because their inherently high surface area provides an attractive means to hyperpolarize liquids brought in contact with them. The embodiments result from a recently developed a method for the room temperature optical DNP of .sup.13C nuclei in powdered diamond, employing a combination of laser and swept microwave irradiation at low magnetic fields (B ˜1-30 mT). The method, while sharing implementational similarities with ISE differs in that it is a predominantly low-field mechanism, polarizing spins for which ω.sub.L<<A; and where the hyperpolarization sign is under complete experimental control. The spin-1 NV centers are inhomogenously broadened to a powder pattern with bandwidth β=γ.sub.eB, and here too the slow rate of microwave sweeps over B limit the overall achievable nuclear polarization. This is particularly pertinent since the NV electrons can be completely and rapidly repolarized by laser irradiation with t.sub.repol<<T1e, scaling with the applied laser power. As the embodiments shall show swept frequency combs allow for multifold DNP gain with little hardware overhead.
(98) To assist in understanding, a first embodiment illustrates the DNP mechanism for the case of an NV center coupled to a single .sup.13C nuclear spin shown in
(99) However, the electron resonance frequencies Δ±γ.sub.eB cos ϑ are orientation dependent, where Δ=2.87 GHz and 8 is the angle from the applied field to the N-V axis. In a randomly oriented powder the ESR spectrum is hence inhomogenously broadened to B=γ.sub.eB≈600 MHz at 20 mT. Indeed in
(100) Frequency combs provide an elegant means to overcome this problem, decoupling the MW sweep rate from the total number of electron sweeps. Indeed, a swept microwave frequency comb can maintain the adiabaticity of a single sweep while increasing the cumulative number of sweeps in the total DNP period bounded by nuclear relaxation time T1n. Microwave frequency combs can be constructed by semiconductor lasers under negative optoelectronic feedback and nonlinear mixing in tunneling junctions. The embodiments here follow a simpler approach instead, time-cascading MW sweeps generated by N voltage controlled oscillator (VCO) sources.
(101) The DNP enhancement gains scale linearly with N, allowing a multiplicative boost to the DNP enhancement as in
(102) It is worth mentioning that in effect, the cascaded sweeps entail an increase of total microwave power seen by the sample. For DNP mechanisms such as ISE, the same gains in principle can be achieved by employing a higher MW power, leading to a faster Ω.sub.e and consequently ca. However even for such systems, there are several technological advantages of using swept frequency combs for DNP. The costs of MW sources and amplifiers scale approximately exponentially with power, but employing a cascade of N low-power amplifiers leads to only a linear cost scaling. Moreover, it is easier to directly synthesize slower frequency sweeps, for instance using inexpensive AWGs and mixers. The embodiments here allow one to harness several slow, low-power, sweeps to gain the advantages of more expensive high-power platforms, an advantage especially pertinent at high fields. Moreover, the technique highlights the inherent merits of frequency swept modalities as opposed to field swept ones; while they are equivalent for a single sweep, when cascaded into swept frequency combs the former can provide multifold DNP gains.
(103) The discussion now turns to evaluating the factors affecting the ultimate limits to the multiplicative enhancement gain. In
(104) This is also elucidated in
(105) The embodiments allow the transfer of hyperpolarization to liquids via flow through .sup.13C polarized diamond frit for signal enhanced spectroscopy or imaging as in
(106) In
(107) For various B.sub.pol fields, we map in
(108)
(109) Since the signal from the .sup.13C in the diamond can be sign inverted with high fidelity, (better than 5%, see
(110)
(111) The method entails a swept frequency comb to excite the entire inhomogenously broadened electron bandwidth for polarization transfer. It can be implemented by cascading N sweeps from individual low-power sources/amplifiers to obtain a DNP enhancement boost a N, with ultimate limits set by the homogeneous electron linewidth and lifetime T.sub.1e. As such the technique affirms the notion the electron spin control can significantly enhance DNP by harnessing the full power of the electron spectrum. The embodiments have demonstrated its utility for the hyperpolarization of .sup.13C nuclei in powdered diamond microparticles via optically pumped NV centers at room temperature, obtaining a 300% boost in DNP efficiency. When employed for conventional polarizing radicals at high fields, the technique promises to yield DNP enhancement boosts in excess of one order of magnitude, with relatively a simple implementation employing existing technology and only a.
(112)
(113) It will be appreciated that variants of the above-disclosed and other features and functions, or alternatives thereof, may be combined into many other different systems or applications. Various presently unforeseen or unanticipated alternatives, modifications, variations, or improvements therein may be subsequently made by those skilled in the art which are also intended to be encompassed by the following claims.