EP1706738A2 - Linear chemoselective carbosilane polymers and methods for use in analytical and purification applications - Google Patents
Linear chemoselective carbosilane polymers and methods for use in analytical and purification applicationsInfo
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- EP1706738A2 EP1706738A2 EP04821584A EP04821584A EP1706738A2 EP 1706738 A2 EP1706738 A2 EP 1706738A2 EP 04821584 A EP04821584 A EP 04821584A EP 04821584 A EP04821584 A EP 04821584A EP 1706738 A2 EP1706738 A2 EP 1706738A2
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- Prior art keywords
- carbosilane
- substituted
- polymer
- group
- phenol
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G77/00—Macromolecular compounds obtained by reactions forming a linkage containing silicon with or without sulfur, nitrogen, oxygen or carbon in the main chain of the macromolecule
- C08G77/60—Macromolecular compounds obtained by reactions forming a linkage containing silicon with or without sulfur, nitrogen, oxygen or carbon in the main chain of the macromolecule in which all the silicon atoms are connected by linkages other than oxygen atoms
Definitions
- This invention relates generally to a new class of chemoselective polymer materials.
- the invention relates to linear and branched polycarbosilane compounds for use in various analytical applications involving sorbent polymer materials, including chromatography, chemical trapping, and chemical sensor applications.
- These polymeric materials are primarily designed to sorb hydrogen bond basic analytes such as organophosphonate esters (nerve agents and precursors), and nitroaromatics (explosives).
- sorbent chemoselective polymers for chromatography, chemical trapping, and chemical sensor applications is well established for technologies such as gas liquid chromatography, solid phase microextraction (SPME), and surface acoustic wave (SAW) sensors, respectively.
- SPME solid phase microextraction
- SAW surface acoustic wave
- the sorbent polymer is applied to a substrate as a thin film and analytes are sorbed to the polymer material.
- a typical configuration for a chemical sensor incorporates a thin layer of sorbent polymer deposited on a transducer that monitors changes in the physicochemical properties of the polymer film and translates these changes into an electrical signal that can be recorded.
- a chemoselective polymer is designed to contain functional groups or active sites that can interact preferentially with the target analyte through dipole-dipole, van der Waals, or hydrogen bonding forces.
- the interaction between a chemoselective polymer and the analyte can even be regarded as a "lock and key” type interaction if multiple active sites in the polymer are spatially controlled so that an analyte with multiple functional sites can simultaneously interact with the polymer active sites.
- the ideal polymer film for extended chemical sensor applications should exhibit reversible binding of analyte, high selectivity and high sorptivity, long term stability; and, as a thin film, offer fast sorption and desorption properties.
- a polymer must have physical properties that are amenable to rapid analyte sorption and desorption, suitable choice of functional groups, and a high density of functional groups to increase the sorptive properties for target analytes.
- Polymers with suitable analyte sorption characteristics can be obtained commercially for most analytes of interest with the exception of hydrogen bond acid polymers for sorption of hydrogen bond basic vapors.
- SPIE Detection and Remediation Technologies for Mines and Minelike Targets IV, Orlando, FL, 1999, 3710, 394-401; Houser, E.J.; McGill, R.A.; Nguyen, V.K.; Chung, R.; Weir, D.W. Proc. SPIE, Detection and Remediation Technologies for Mines and Minelike Targets V, Orlando, FL, 2000, 4038; Houser, E.J.; Mlsna, T.E.; Nguyen, V.K.; Chung, R.; Mowery, R.L.; McGill, R.A.
- Devices for the molecular recognition of noxious species or other analytes typically include (1) a substrate and (2) a molecular recognition coating upon the substrate. These devices may be used, for example, as stand-alone chemical vapor sensing devices or as a detector for monitoring different gases separated by gas chromatography.
- Molecular recognition devices are described in Grate et al., Sensors and Actuators B, 3, 85-111 (1991); Grate et al., Analytical Chemistry, Vol. 65, No. 14, Jul. 15, 1993; Grate et al., Analytical Chemistry, Vol. 65, No. 21, Nov. 15, 1993; and Handbook of Biosensor and Electronic Noses, ed. Kress-Rogers, CRC Press, 1996.
- the substrate is a piezoelectric material or an optical waveguide, which can detect small changes in the mass or refractive index, respectively.
- SAW surface acoustic wave
- SAW devices function by generating mechanical surface waves on a thin slab of a piezoelectric material, such as quartz, that oscillates at a characteristic resonant frequency when placed in a feedback circuit with a radio frequency amplifier.
- the oscillator frequency is measurably altered by small changes in mass and/or elastic modulus at the surface of the SAW device.
- SAW devices can be adapted to a variety of gas and liquid phase analytical problems by designing or selecting specific coatings for particular applications.
- the use of chemoselective polymers for chemical sensor applications is well established as a way to increase the sensitivity and selectivity of a chemical sensor with respect to specific classes or types of analytes.
- a chemoselective polymer is designed to contain functional groups that can interact preferentially with the target analyte through dipole-dipole, van der Waals, or hydrogen bonding forces.
- functional groups that can interact preferentially with the target analyte through dipole-dipole, van der Waals, or hydrogen bonding forces.
- strong hydrogen bond donating characteristics are important for the detection of species that are hydrogen bond acceptors, such as toxic organophosphorus compounds.
- Increasing the hydrogen bond acidity and the density of hydrogen bond acidic binding sites in the coating of a sensor results in an increase in selectivity and sensitivity of the sensor for hydrogen bond basic analytes.
- Chemoselective films or coatings used with chemical sensors have been described by McGill et al. in Chemtech, Vol. 24, No. 9, 27-37 (1994).
- the materials used as the chemically active, selectively absorbent layer of a molecular recognition device have often been polymers, as described in Hansani in Polymer Films in Sensor Applications (Technomic, Lancaster, Pa. 1995).
- Ting et al. investigated polystyrene substituted with hexafluoroisopropanol (HFIP) groups for its compatibility with other polymers in Journal of Polymer Science: Polymer Letters Edition, Vol. 18, 201-209 (1980).
- Chang et al. and Barlow et al. investigated a similar material for its use as a sorbent for organophosphorus vapors, and examined its behavior on a bulk quartz crystal monitor device in Polymer Engineering and Science, Vol. 27, No.
- FPOL fluoropolyol
- Grate et al. U.S. Patent No. 6,015,869; Jay W. Grate et al., "Hybrid Organic/Inorganic Copolymers with Strongly Hydrogen-Bond Acidic Properties for acoustic Wave and Optical Sensors," Chem. Mater. 9, 1201-1207 (1999); Jay W. Grate et al., "Hydrogen Bond Acidic Polymers for Surface Acoustic Wave Vapor Sensors and Arrays," Anal. Chem.
- siloxane polymers are said to provide improved coatings and vapor sorption compositions for chemical sensors that are sensitive, reversible and capable of selective absorptions for particular vapors, particularly the hydrogen bond accepting vapors, such as organophosphorus compounds.
- the present invention discloses a newly discovered class of carbosilane polymers that can be used to produce hydrogen bond acidic coatings for chemical sensor applications. There has been no previously reported use of polycarbosilanes as hydrogen bond acidic coatings or material for any type of chemical sensor or collector applications. Use of the carbosilane polymers of the present invention that possess highly functionalized units can result in significant selectivity and sensitivity improvements.
- the chemoselective carbosilane polymer materials of the present invention exhibit, not only improved sensitivity to organophosphorus species, but also high selectivity and sensitivity toward nitroaromatic vapors, and are thus also useful for detecting the presence of explosives.
- Conventional explosives such as trinitrotoluene (TNT), hexahydro-l,3,5-trinitro-l,3,5-triazine (RDX), and octahydro- l,3,5-trinitro-l,3,5,7-tetrazocine (HMX) may be contained in unexploded munitions, e.g., buried below the surface of the ground. Such munitions exude or leak vapors of the explosive.
- TNT trinitrotoluene
- RDX hexahydro-l,3,5-trinitro-l,3,5-triazine
- HMX octahydro- l,3,5-trinitro-l,3,5,7
- vapors are typically concentrated in the surrounding soil and then migrate to the surface where they can be detected by the compounds, devices and methods disclosed by the present invention.
- dogs can be used to locate land mines demonstrating that the canine olfactory system is capable of detecting and identifying explosive related analyte signatures.
- sensors for the detection of chemical vapors associated with explosives is of great interest.
- This invention relates to the preparation of new linear and branched chemoselective carbosilane polymer materials for chemical sensor, chromatography, dosimeter, analyte collector, and air filtration applications.
- a carbosilane polymer with pendant and terminal groups that are functionalized with halogen substituted alcohol or phenol groups having the general structure:
- R 1 ⁇ -[-Si-X -l n -Z 2 R 2 wherein n is an integer greater than 1 ; wherein at least one of R 1 and R 2 is a pendant group having at least one element independently selected from the group consisting of alkyl, alkenyl, alkynyl, and aryl groups, or combinations thereof, and having at least one halogen substituted alcohol or phenol groups attached thereto; wherein any said R 1 and R 2 aryl groups are attached to said [Si-X-] n either directly or through a short hydrocarbon chain; wherein any remaining said R 1 or R 2 group is a hydrocarbon or carbosilane group; wherein X is a polymer backbone component selected from the group consisting of alkylene, alkenylene, alkynylene, arylene groups, and combinations thereof; and wherein Z 1 and Z 2 are end groups independently selected from the group consisting of alkyl, alkenyl, alkynyl, aryl, alkyl silane
- a device for selective molecular recognition comprising a sensing portion, wherein the sensing portion includes a substrate or multiple substrates having coated thereon a layer, the layer comprising any one of the polymeric compounds of the invention.
- a method of detecting hydrogen bond basic analytes such as the organophosphonate esters or nitroaromatic compounds, comprising the steps of: (a) contacting the molecules of such an analyte with the sensing portion of the device of the invention; (b) collecting the molecules on the layer of the device, the molecules altering a specific physical property of the layer; and (c) detecting the amount of change with respect to the physical property from before the contacting step (a) and after the collecting step (b).
- a chemical vapor collector comprising an amount of any one of the polymeric compounds of the invention effective to collect hydrogen bond basic vapors or nitroaromatic compounds.
- the present invention relates to the preparation of a new class of linear and branched chemoselective polymers that can be used to produce hydrogen bond acidic materials for chemical sensor, chromatography, analyte dosimeter, analyte collector, and air filtration applications.
- polycarbosilane and polysilylene materials with functionalized pendant aryl or groups.
- Use of these carbosilane polymers with highly functionalized units can result in significant selectivity and sensitivity improvements.
- These polymers have pendant and terminal groups that are functionalized with halogen substituted alcohol or phenol groups.
- Pendant aryl groups can be attached to the carbosilane polymer backbone either directly or through a hydrocarbon chain.
- carbosilane polymeric materials are primarily designed for the chemical detection of organophosphonate esters (nerve agents and precursors), and nitroaromatics (explosives) but may also have applications in detecting other hydrogen-bonding basic analytes.
- organophosphonate esters nerve agents and precursors
- nitroaromatics explosive
- One of the improved and novel features of the present invention is that there are no hydrogen bond basic heteroatoms present in the polymer backbone. Heteroatoms, such as oxygen or nitrogen, can bind HFIP groups thereby decreasing available analyte bonding sites.
- the lack of heteroatoms, such as oxygen, in the present inventions polymer backbone results in a diminished sensitivity to hydrogen bond acid analytes, such as water from ambient humidity.
- HFIP functionalized terminal alkene groups or aryl rings were chosen as the interactive portion of the polymer because of the high hydrogen-bonding acidity of these groups.
- Polynitroaromatic compounds possess multiple basic sites through the oxygen atoms of the nitro group and the hydrogen-bond acidity of the hexafluoroisopropanol group is complimentary to these basic sites.
- the hydrogen bond acidity of alcohols increases with the number of perfluoroalkyl groups bound to the carbinol group making the HFD? group an excellent hydrogen bond acid.
- the hydrogen bond basicity imparted by the oxygen atom of the hydroxyl group is substantially reduced thereby increasing the selectivity of the hydroxyl group for hydrogen bond basic analytes.
- the fluorocarbon group also imparts substantial chemical stability to the polymer due to the inertness of the C-F bond.
- a further advantage is the steric bulk of the CF 3 groups and phenyl rings which hinders access to the polymer backbone thereby decreasing van der Waals interactions between analyte molecules and the polymer backbone.
- the aromatic pendant groups provides two additional advantages in that they generally lead to more hydrogen bond acidic systems than comparable saturated hydrocarbons and they are better spatially oriented to interact with the electron rich oxygen atoms of the nitro groups on the nitroaromatic analytes.
- the nitroaromatic analytes are dipolar and highly polarizable molecules that exhibit hydrogen- bond basic properties increasing with the number of nitro groups on the molecule.
- the hydrogen bond acidic polymers are designed to interact with the available electron density located on the oxygen atoms of the nitro groups of the polynitroaromatics.
- the hydrogen-bond basicities of some common nitroaromatics are 0.25 for 3-nitrotoluene, 0.47 for 2,4-dinitrotoluene and 0.61 for 2,4,6-trinitrotoluene demonstrating that the basicity of additional nitro groups is additive. These hydrogen bond basicities can be compared to those of hexane (0.0) and toluene (0.14). It should also be noted that the nitroaromatics are relatively large molecules and therefore also have significant van der Waals interactions with other materials.
- a carbosilane polymer with pendant and terminal groups that are functionalized with halogen substituted alcohol or phenol groups having the general structure: R 1 wherein n is an integer greater than 1; wherein at least one of R 1 and R 2 is a pendant group having at least one element independently selected from the group consisting of alkyl, alkenyl, alkynyl, and aryl groups, or combinations thereof, and having at least one halogen substituted alcohol or halogen substituted phenol group attached thereto; wherein any said R 1 and R 2 aryl groups are attached to said [Si-X-] soir either directly or through a short hydrocarbon chain; wherein any remaining said R 1 or R 2 group is a hydrocarbon or carbosilane pendant group; wherein X is a divalent polymer backbone component selected from the group consisting of hydrocarbons, carbosilanes, hydrocarbons with halogen substituted alcohol substituents, hydrocarbons with halogen substituted
- R 2 is a substituted methyl group.
- X is a linear alkyl chain having between 1 and 12 carbons.
- R 1 is a 3-phenylpropyl group having two halogen substituted alcohol or phenol groups attached to the aryl group, and wherein X is a 3 carbon chain.
- the halogen substituted alcohol or phenol groups are -C(CF 3 ) 2 OH groups.
- Z 1 is either a 3- phenylpropyl group having at least one halogen substituted alcohol or halogenated phenol group attached thereto
- Z 2 is an allyl bis(3-phenylpropyl)silyl group having at least one halogen substituted alcohol or phenol group attached thereto
- the aryl groups of R 1 and R 2 are independently selected from either a phenyl ring having two halogen substituted alcohol or halogenated phenol group.
- R 1 or R 2 is an allyl group having one or two halogen substituted alcohol or phenol groups attached thereto.
- the carbosilane polymer has any of the following structures:
- the compounds of the present invention can be synthesized by reacting hexafluoroacetone with the parent molecule, comprising a core polymer and a number of pendant unsaturated groups, taking advantage of the reactivity of perfluoroketones with terminally unsaturated groups, as described by Urry et al., J. Org. Chem., Vol. 33, 2302-2310 (1968). According to Urry, "Hexafluoroacetone gives stepwise reactions with olefins
- a substituted carbosilane polymer can be prepared by taking the following steps: (a) selecting a starting material independently selected from the group consisting of aryl substituted metallated hydrocarbons and aryl substituted metallated carbosilanes; (b) reacting said aryl substituted metallated hydrocarbon or said aryl substituted metallated carbosilane with an alkenyl or alkynyl dichlorocarbosilane, thereby forming an unsaturated carbosilane intermediate having the structure: R 4 H-Si-R 6 R 5 wherein R 4 and R 5 are said independently selected aryl substituted hydrocarbons or carbosilane groups derived from aryl substituted metallated hydrocarbon or said aryl substituted metallated carbosilanes; and wherein R 6 is an alkenyl or alkynyl group;
- the hydrosilation catalyst is hexachloroplatinic acid.
- a substituted carbosilane polymer can also be prepared by taking the following steps: (a) selecting a starting material independently selected from the group consisting of substituted metallated hydrocarbons and substituted metallated carbosilanes; (b) reacting said substituted metallated hydrocarbon or said substituted metallated carbosilane with H 2 SiCl 2 , thereby forming a disubstituted silane or carbosilane intermediate having the structure: H H-Si— R 8 R 9 wherein R 8 and R 9 are said selected substituted metallated hydrocarbon or said substituted metallated carbosilane;
- a substituted carbosilane polymer can be prepared by taking the following steps: (a) selecting a starting material independently selected from the group consisting of substituted metallated hydrocarbons and substituted metallated carbosilanes;
- the hydrosilation catalyst is hexachloroplatinic acid.
- the substituted metallated hydrocarbon or substituted metallated carbosilane each contain at least one aryl group.
- the doubly unsaturated species has one of the following structures:
- the substituted carbosilane polymer has one of the following structures:
- a substituted carbosilane polymer can be prepared by taking the following steps: (a) reacting an appropriate cyclic carbosilane precursor, such as a silacyclobutane or 1,3- disilacyclobutane, with a suitable initiator or catalyst to perform a ring opening polymerization reaction, thereby forming an intermediate polymer having the structure: X (Si-Y-) q X wherein q is an integer greater than or equal to 1; wherein Y is a hydrocarbon or carbosilane fragment derived from the ring opening polymerization of a cyclic carbosilane precursor; wherein X is a readily substitutable group such as a halide or alkoxide;
- a substituted carbosilane polymer can be prepared by taking the following steps:
- q is an integer greater than or equal to 1; wherein Y is a hydrocarbon or carbosilane fragment derived from the ring opening polymerization of a cyclic carbosilane precursor; wherein X is a readily substitutable group such as a halide or alkoxide;
- Ring opening polymerization is a well established method for the formation of carbosilane polymers. See, for example, Jntenante, L.V. and Shen, Q. Chap. 10 in Silicon Containing Polymers, Jones, R.G.; Ando, W.; Chojnowski, J. (Eds.), Kluwer Academic Press (2000).
- the principle of operation of an acoustic wave transducer device involves the production of an acoustic wave that is generated on the surface or through the bulk of a substrate matenal and allowed to propagate.
- To generate the acoustic wave typically requires a piezoelectric matenal.
- Applying a time varying electric field to the piezoelectnc material will cause a synchronous mechanical deformation of the substrate with a coincident generation of an acoustic wave in the material.
- the time varying electric field is generated in the surface by the action of the time varying electrical field applied through one or more electrodes that are connected to the piezoelectric material via one or more metal wire bonds and to an electrical circuit.
- Another electrode or electrodes receives the wave at a distance from the first electrode or electrodes
- the second electrode or electrodes is also connected via metal wire bonds to the electrical circuit and the piezoelectric material.
- Such devices are operable in a frequency range of about 1 kilohertz to 10 gigahertz, preferably from about 0.2 megahertz to about 2 gigahertz and, more preferably, in the range of between about 200 to 1000 megahertz.
- piezoelectric substrates known in the art are useful in accordance with the invention, e.g., ST-cut quartz.
- piezoelectnc ceramics such as those of the barium titanate and lead titanate zirconate families, are suitable substrates.
- the substrate may comprise a piezoelectric coating material, such as ZnO or A1N, applied to a non-piezoelectric material, such as silicon or silicon carbide surface used in a micromachmed device.
- the piezoelectnc properties of these and other suitable mate ⁇ als are provided in CRC Handbook of Materials Science, Vol. Ill, Charles T. Lynch, CRC Press: Boca Raton, 198 (1975).
- the sensing portion of an acoustic wave device of the invention is the area under the chemoselective layer, where the chemoselective layer covers the transducer.
- the area of the sensing portion of such a device can be on the order of about 0.0001-10 cm 2 .
- An optical waveguide chemical sensor consists of a light source, an optical waveguide, a chemoselective film or layer, and a detector to analyze the light after interacting with the layer.
- the waveguide is used to propagate light to a sensing portion of the device that contains the chemoselective layer.
- the light travels towards this coating and interacts with it. If the analyte being detected is present in the layer, the optical characteristics of the light may be altered, and the change is detected by some optically sensitive detector.
- the chemoselective layer may consist of a composite of polymer and one or more dyes.
- An optical chemical sensor commonly refened to as an optrode, includes a light source such as a semiconductor laser, light-emitting diode, or a halogen lamp; an optical waveguide such as a fiber optic or a planar waveguide substrate; a chemoselective layer deposited on the sensing portion of the optrode exposed to an analyte; and a detector to monitor the optical characteristics of the optrode. Sorption of the analyte to the chemoselective layer modifies the optical characteristics of the optrode, and this is detected as a change in refractive index or light intensity at one or more wavelengths of light.
- Optical sensors, optical fibers and optical wave guides are useful and are known in the art.
- Fiber optic waveguides for sensor applications are commonly manufactured from silica glass or quartz as the core of the fiber. Surrounding this core is a cladding material that exhibits a lower refractive index than the fiber core to achieve internal reflectance.
- the chemoselective layer is typically applied at the distal tip of the fiber optic or along the side of the fiber optic where a portion of the outer cladding material has been removed.
- Planar waveguide optical sensors use a planar substrate device as a light guide. The use of a planar waveguide normally involves the use of evanescent wave techniques to take advantage of the large active surface area. Many of these sensors use the fluorescent properties of a chemoselective layer and. are thus called Total Internal Reflection Fluorescence (TTJ F) sensors.
- TJ F Total Internal Reflection Fluorescence
- SAW devices are used as the substrate for the device of the invention.
- Particularly preferced SAW devices are 915 MHz two-port resonators made of ST-cut quartz with aluminum metallization and a thin silicon dioxide overcoat.
- SAW resonators and oscillator electronics to drive them are available from RF Monolithics and SAWTEK Inc.
- the substrate is cleaned. The cleaning procedure typically involves rinsing the device in an organic solvent and then subjecting it to plasma cleaning, as is well-known.
- the substrate can be silanized with a material such as diphenyltetramethyldisilazane (DPTMS) by immersing the cleaned substrate surface in liquid DPTMS, placing the immersed surface into a partially evacuated chamber while heating the device to about 170°C for about 12 hours.
- DPTMS diphenyltetramethyldisilazane
- the silanized substrate is then removed and solvent cleaned with, for example, toluene, methanol, chloroform, or a physical or serial combination thereof, before applying the layer of the sensor portion of the device.
- the method used for coating the compounds of the invention onto a substrate is not critical, and various coating methods known in the art may be used.
- the coating is applied to the substrate in solution, either by dipping, spraying or painting, preferably by an airbrush or spin coating process.
- the concentration of the compound of the invention in the coating solution should be sufficient to provide the viscosity most appropriate for the selected method of coating, and may easily be determined empirically.
- the solvent used although not critical, should be sufficiently volatile as to facilitate quick and easy removal, but not so volatile as to complicate the handling of the coating solution prior to being deposited on the substrate. Examples of useful solvents include, for example, hexane, chloroform, methanol, toluene, tetrahydrofuran, and water. J.W. Grate and R.A. McGill in Analytical Chemistry, Vol. 67, No. 21, 4015-19 (1995) describe making chemical acoustic wave detectors by applying a thin film to a surface acoustic wave device.
- the thickness of the chemoselective layer preferably does not exceed that which would reduce the frequency of a chemical sensor operating at 250 megahertz by about 250 kilohertz and, typically, is in the range of about 0.5 n to 10 microns, preferably in the range of 1 to 300 nm.
- the coating may comprise a single layer or multiple layers. With multiple layers, a layer containing the compound of the invention may be combined with at least one other layer that provides pores suitable for physically eliminating some chemical species of large size that are not to be monitored. The process of sorption plays a key role in the performance of chemical sensors for gas phase analysis.
- microsensors which consist of a physical transducer and a selective sorbent layer, sense changes in the physical properties, such as mass, in the sorbent layer on the surface of the transducer, due to the sorption of analyte molecules from the gas phase into the sorbent layer.
- Coating material properties that are known to elicit a detectable SAW sensor response are mass (i.e., as determined by the thickness and density of the coating), elasticity, viscoelasticity, conductivity, and dielectric constant. Changes in these properties can also result in changes in the attenuation (i.e., loss of acoustic power) of the wave. In some situations, monitoring attenuation may be preferable to monitoring velocity.
- SAW devices coated with compounds of the invention are capable of detecting mass changes as low as about 10O pg/cm 2 . Further, vapor diffusion is rapid providing fast detection in a sub second time frame.
- Sensor selectivity the ability to detect a chemical species in an environment containing other chemical species, is generally determined by the ability of the coated layer to specifically sorb the species to be detected to the exclusion of others.
- the method of selectively detecting the presence of a chemical entity within an environment comprises (a) placing the sensing portion of the device of the invention in the environment and (b) detecting changes in the coated layer of the sensing portion of the device.
- the environment may be gaseous or liquid.
- More than one device may be provided.
- a plurality of sensor portions could be used in a sensor anay with, e.g., associated control devices and software, in a manner similar to conventional procedures employed with sensor anays.
- the coated sensor layer can be purged or cleaned by a second stream, allowing sensing of a new third stream to take place.
- air, water- or acid-base solutions could be used as purging or cleaning solutions, depending on the species being detected and the nature of the layer.
- the polymeric compounds are excellent sorbents for both hydrogen bond basic vapors, such as organophosphorus compounds, and also for nitroaromatic materials, such as explosives. It is expected that the chemical sensor systems of the present invention could weigh between 1-32 ounces and could, therefore, be easily mounted on a remote or robotic vehicle for automatically detecting buried explosives or munitions.
- such a device would also be- useful for remotely detecting chemical agents or explosives secreted upon a person intending the destruction of private property and/or personnel, such as, for example, at crowded public places like airports or arenas where tenorist activities may be suspected.
- Increasing the concentration of vapor in the soil or other environment sunounding a munition will produce a stronger signal following the reaction with sensor portion of the device of the present invention.
- the chemoselective carbosilane polymers of the invention exhibit high selectivity and sensitivity toward nitroaromatic vapor, due at least in part to the sensitivity and selectivity of the multiple halogen substituted alcohols or phenols that are present.
- the presence of these functional groups is also directly responsibility for the sensitivity of these materials to hydrogen bond basic vapors.
- the functionalized polycarbosilane compounds of the invention also have the advantage of high-yield preparation methods, ready purification, in addition to having an increased density of functional groups, as compared with previously disclosed polymeric coatings. Moreover, the flexibility in the synthesis of these materials allows one to tailor a wide variety of related chemoselective compounds.
- Example 1 Synthesis Procedures Preparation of Monomers Allylbis henpropyDsilane: To a 500 mL Schlenk flask containing magnesium turnings (2.71 g, 111.5 mmol) in diethyl ether (250 mL) was added dropwise a solution of l-bromo-3-phenyl ⁇ ropane (20.0 g, 100.5 mmol) over 4 hours. The resulting pale yellow solution was stined for 10 hours at room temperature then cooled to 0 °C and treated with allyldichlorosilane (7.085 g, 50 mmol) via syringe. The resulting white slurry was stined for 4 hours at room temperature then heated to reflux for 20 minutes.
- FTIR (NaCl, cm “1 ): 3084, 3061, 3025, 3001, 2924, 2856, 2795, 1603, 1496, 1453, 1411, 1342, 1235, 1169, 1140, 1122, 1094, 1070, 1030, 1002, 985, 922, 903, 826, 774, 745, 698.
- the CHC1 3 polymer solution was filtered and the solvent removed in vacuo leaving a pale brown polymer.
- the presence of the - (CF 3 ) 2 COH group is verified by the presence of an O-H stretching absorption near 3500-3600 cm "1 in the FTJJ . spectrum of the functionalized polymer.
- Example 2 Applying a Thin Film to a SAW Device
- SAW devices are cleaned in a Harrick plasma cleaner prior to polymer film application.
- Aerosol spray-coated films of the present invention in solvent are applied to a SAW device using an airbrush supplied with compressed dry nitrogen.
- the frequency change of the SAW device operating in an oscillator circuit is monitored during deposition, using the change in frequency as a measure of the amount of material applied.
- the films are annealed at 50°C overnight in an oven. Spray-coated films are examined by optical microscopy with a Nikon microscope using reflected light Nomarski differential interference contrast.
- Example 3 Detection of Basic Vapors with a Compound-Coated SAW Device
- the polymers of the present invention are applied to SAW devices and tested against organic vapors at various concentrations.
- the coated acoustic wave devices undergo a shift in frequency that is proportional to the amount of vapor sorbed by the compound.
- Times to steady state response, conesponding to equilibrium partitioning of the vapor into the compound layer are typically under 15 seconds using a vapor delivery system.
- calibration curves are constructed from frequency shift data for a vapor at multiple concentrations. The calibration curves are nonlinear, which is consistent with hydrogen bonding interactions at a finite number of sites in the polymers of the present invention.
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Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US10/683,316 US7157052B1 (en) | 2000-06-30 | 2003-10-10 | Linear chemoselective carbosilane polymers and methods for use in analytical and purification applications |
| PCT/US2004/026282 WO2005084165A2 (en) | 2003-10-10 | 2004-07-29 | Linear chemoselective carbosilane polymers and methods for use in analytical and purification applications |
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| Publication Number | Publication Date |
|---|---|
| EP1706738A2 true EP1706738A2 (en) | 2006-10-04 |
| EP1706738A4 EP1706738A4 (en) | 2007-10-10 |
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| EP04821584A Withdrawn EP1706738A4 (en) | 2003-10-10 | 2004-07-29 | LINEAR CHEMOSELECTIVE CARBOSILAN POLYMERS AND METHOD FOR USE IN ANALYSIS AND CLEANING APPLICATIONS |
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| EP (1) | EP1706738A4 (en) |
| WO (1) | WO2005084165A2 (en) |
Family Cites Families (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| FR2784114B1 (en) * | 1998-09-18 | 2001-02-02 | Thomson Csf | POLYMERIC MATERIALS ABSORBING ORGANOPHOSPHORUS COMPOUNDS. PROCESS FOR THE SYNTHESIS OF THESE MATERIALS. CHEMICAL SENSORS COMPRISING SUCH MATERIALS |
| US6630560B2 (en) * | 2000-06-30 | 2003-10-07 | The United States Of America As Represented By The Secretary Of The Navy | Linear and branched chemoselective siloxane polymers and methods for use in analytical and purification applications |
| US6617040B2 (en) * | 2002-01-16 | 2003-09-09 | The United States Of America As Represented By The Secretary Of The Navy | Chemoselective dendrimeric compounds for use in chemical sensors |
| US7078548B2 (en) * | 2002-03-06 | 2006-07-18 | The United States Of America As Represented By The Secretary Of The Navy | Hyperbranched chemoselective silicon-based polymers for chemical sensor applications |
-
2004
- 2004-07-29 WO PCT/US2004/026282 patent/WO2005084165A2/en not_active Ceased
- 2004-07-29 EP EP04821584A patent/EP1706738A4/en not_active Withdrawn
Also Published As
| Publication number | Publication date |
|---|---|
| EP1706738A4 (en) | 2007-10-10 |
| WO2005084165A2 (en) | 2005-09-15 |
| WO2005084165A3 (en) | 2006-08-17 |
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