The present invention relates to a polyaniline/carbon black composite and a preparation method thereof, especially to a polyaniline/carbon black composite and a preparation method thereof that are applied to dielectric material with microwave absorption or conductive coatings with corrosion resistance.
The research and development of conductive coatings have been over a half-century. Working as conductive layer, electromagnetic wave shielding layer and antistatic coating, the conductive coatings have broad perspective and increasing market demands. The membrane surface of the conductive coating has higher resistance, charge generated thereon is not dissipated effectively so that static charges tend to accumulate thereon. This leads to certain limitations on applications of some respects such as dust proofing and bacteria resistance in medicine, protection from electric shock in medical operations, static protection for preventing static ignition and explosion in mine environment and petrochemistry, dust-proofing for protection of integrated circuit, and fiber accumulation in spinning industry. The conductive coating is special coating or meeting various requirements. The conductive coating is coating with conductor and semiconductor properties and the conductivity is above 10−10 S/cm, being applied to various fields such as electronic and electric appliance industry, printed circuit board, switches, marine antifouling coatings, electrothermal material, and electromagnetic wave shielding, and surface protection.
While using carbon series as filler in preparation of conductive coating, carbon black(mainly high conductive furnace carbon black and acetylene carbon black), graphite and carbon fiber are mixed together. In literatures, graphite as conductive filler is added with epoxy resin and it is found that the conductivity is dramatically improved when amount of the graphite is over 50 wt. %. However, addition of graphite results in poor physical and mechanical properties and poor processability. This leads to limits on usefulness of the conductive coating.
The conductive, corrosion resistant and microwave absorbing polyaniline has features of light weight, good plasticity, easy raw materials acquisition, easy synthesis and high stability. Thus polyaniline together with high conductive, corrosion resistant and microwave absorbing nano-scale carbon black form a polyaniline/carbon black composite material. The polyaniline/carbon black distributed in substrate(epoxy resin, organic silicone) can overcome defects of poor physical property, poor mechanical property and poor processability caused by large amount of graphite being added. Moreover, the present invention has features of high conductivity, corrosion protection and high microwave absorption without adding large amount of carbon black. Thus weight of conventional conductive coating is reduced so as to facilitate the applications of material in conductive elements, corrosion protection or microwave absorbing elements.
Therefore it is a primary object of the present invention to provide a polyaniline/carbon black composite and a preparation method thereof that improve conductivity of polyaniline by nanoscale carbon black.
It is another object of the present invention to provide a polyaniline/carbon black composite and a preparation method thereof that the composite material is used as additive in conductive and corrosion resistant coating.
It is a further object of the present invention to provide a polyaniline/carbon black composite and a preparation method thereof that the composite is used as additive in microwave absorbing material.
It is a further object of the present invention to provide a polyaniline/carbon black composite and a preparation method thereof that overcome shortcomings of conductive coatings caused by large amount of graphite being added such as reduced physical property, poor mechanical property and poor processability.
In order to achieve objects, the present invention provides a polyaniline/carbon black composite and a preparation method thereof. The polyaniline/carbon black composite is formed by polyaniline covering carbon black and is with core-shell structure while the polyaniline/carbon black composite contains 10˜30 wt. % of carbon black. The preparation method of polyaniline/carbon black composite includes the steps of: disperse carbon black into solution to form carbon black solution, add aniline into the carbon black solution to form a first solution; dissolve ammonium persulfate into acid aqueous solution to form a second solution; add the second solution to the first solution, after reaction, through filtering and grinding to produce polyaniline/carbon black composite.
The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings, wherein
The polyaniline/carbon black composite is formed by polyaniline covering carbon black and is with core-shell structure while the polyaniline/carbon black composite contains 10˜30 wt. % of carbon black.
The particle diameter of the carbon black particle is 10˜80 nm and the particle diameter of the polyaniline/carbon black core-shell particle ranges from 50 to 250 nm (from observation of Transmission electron microscopy (TEM)). The preferable weight percent of carbon black in the polyaniline/carbon black composite is 20 wt. %.
Refer to
S1 disperse carbon black into solution to form carbon black solution;
S2 add aniline into the carbon black solution to form a first solution;
S3 dissolve ammonium persulfate into acid aqueous solution to form a second solution;
S4 add the second solution to the first solution for reaction, then through filtering and grinding to produce polyaniline/carbon black composite.
In the step S1, the solution is mixture of a dispersing agent, ethanol solution and acid. The step S1 further includes a step of ultrasound vibration. The step S2 includes a step of distill and purifying the aniline. In the step S3, the acid aqueous solution is hydrochloric acid solution. In the step S4, reaction time after adding the second solution to the first solution is 1˜5 hours while 2 hours are optimum. In the step S3, between filtering and grinding, an acid rinsing step is further included. Hydrochloric acid is used in acid rinsing step and the filtering step is a step of vacuum filtration.
(1) Add carbon black (CB; Degussa PHG-1P) into a dispersing agent (US, GE QF-DT-7100S) and 50 ml ethanol solution, then add 100 ml HCl (hydrogen chloride) (2M) into the mixture solution; after ultrasound vibration for an hour, nanoscale carbon black solution is produced.
(2) Before being used, aniline is purified by second distillation and then the purified aniline is added into above mixture solution. Keep solution temperature at 0 to 5 Celsius degrees and stir the solution for an hour to form a first solution.
(3) Dissolve ammonium persulfate into 25 ml HCl (2M) to form a second solution and slowly drop the second solution into the first solution in step
(2) and stir the solution well for 2 hours.
(4) After vacuum filtration, use HCl (2M) acid rinsing at room temperature. Then a sample is produced after vacuum filtration. After being heated for drying and grinded, powder of PANI/CB nanocomposite (with core-shell structure) is obtained.
Preparation Method of Epoxy Composite Material Containing Polyaniline/Carbon Black
(1) Add 15 g powder of PANI/CB composite with core-shell structure and epoxy rein into a beaker and stir the mixture well by a DC-stirrer.
(2) Pour the mixture of step (1) into a steel mold with length, width and thickness of 15 cm, 15 cm and 0.2 cm while top and bottom sides of the steel mold are clipped by steel plates.
(3) Being hot pressed by a heat compression molding machine under pressure of 35 kg.F/cm2 at 80 □ for 2 hours, a microwave absorbing piece made from epoxy nanocomposite material containing polyaniline/carbon black is produced.
Preparation Method of Ormosil-PANI/CB Composite Material
Samples of organic siloxane composite material containing polyaniline/carbon black respectively are labeled in Ormosil-PANI/CB(10)-10, Ormosil-PANI/CB(10)-20, Ormosil-PANI/CB(10)-30, Ormosil-PANI/CB(20)-10, Ormosil-PANI/CB (20)-20, Ormosil-PANI/CB(20)-30, Ormosil-PANI/CB(30)-10 Ormosil-PANI/CB(30)-20 and Ormosil-PANI/CB(30)-30, wherein PANI/CB represents polyaniline/carbon black, (10) represents amount of carbon black is 10 wt % of the polyaniline/carbon black, -10 represents amount of PANI/CB is 10 wt % of organic siloxane composite material containing polyaniline/carbon black. The rest is referred as similar way above mentioned.
Preparation Method of Aluminum Alloy with Organic Siloxane Composite Material Containing Polyaniline/Carbon Black and Powder of Organic Siloxane Composite Material Containing Polyaniline/Carbon Black
(1) Use water sander and #200 sandpaper to polish surface of aluminum alloy piece ((AA-2024-T3 (Al—Cu—Mg) and (AA-6061-T6 (Al—Mn—Si))).
(2) Alkaline cleaning (5% sodium hydroxide solution) and acid rinsing (50% nitric acid aqueous solution) the aluminum alloy piece for 1 minute respectively (for removing grease).
(3) Water rinsing the aluminum alloy piece for 30 seconds.
(4) Dry the aluminum alloy piece at room temperature for 4 hours.
(5) By spin-coating, the sol-like organic siloxane composite material containing polyaniline/carbon black is coated on a 2.5×5×0.1 cm aluminum alloy piece and totally for 3 layers.
(6) Keep the coated aluminum alloy piece and rest solution static at room temperature for 2 days, then dried at 60° C. for 24 hours. After being dried, the test piece is tested by a salt spray test.
(7) Or the sol-like organic siloxane composite material containing polyaniline/carbon black is dried at 60° C. for 24 hours to get powder of organic siloxane composite material containing polyaniline/carbon black (in network structure) for performing spectral analysis.
Fourier Transform Infrared (FT-IR) Analysis
By means of Fourier Transform Infrared Spectrophotometer, it is proved that polyaniline is distributed in conductive carbon black. Refer to
UV-Vis Spectra Analysis
Add PANI/CB composite into deionized water and apply ultrasonic vibration by a ultrasonic vibration device for 10 minutes to make composites disperse inside the deionized water. Then measure the solution by UV-Vis Spectrophotometer. Refer to
X-ray Diffraction Analysis
Refer to
Electron Paramagnetic Resonance (EPR) and Conductivity Analysis
By means of electron paramagnetic resonance, free electron in aniline and interaction between aniline and carbon black are discussed. Refer to
By an equation (1), value of g factor of each sample is calculated and listed in list 1.
g=g
s−(ΔH/H0)gs (1)
wherein gs is g value of reference material-DPPHm ΔH is difference of spectrum half-width (full width half height) between reference material and sample to be measured.
The g value of six carbons on pure aniline is about 2.0031 and the g value of one nitrogen is about 2.0054. Thus the arithmetic average of g value is about 2.0054. The g value of PANI/CB composite ranges from 2.0043 to 2.0050. That means free electrons of polyaniline in the composite are nearer to N—H bond and polyaniline in the composite is between Emeraldine salt form and Emeraldine base form. Along with increasing amount of carbon black being added, g value tends to increase. This means free electrons of polyaniline are localized near area around N—H bond by carbon black while this will not affect conductivity of composites. Refer to values of conductivity of PANI/CB composite in list 2, the higher ratio the carbon black is, the higher conductivity the PANI/CB composite has. This may be due to bridging effect of carbon black that compensates reduced conducting ability caused by transformation of polyaniline.
Peak-to-Peak Linewidth, ΔHpp
As to solid samples, the following factors may have effect on the half-width thereof: (1) movement narrowing and fine splitting (2) interaction between unpaired electrons (including various types of transporting, fixing and movement) (3) exchange narrowing. It is learned from list 1 that Linewidth of each composite at room temperature is larger (5.164→10.988 G) along with increasing amount of carbon black being added(PANI/CB(5) PANI/CB(30)). And it's larger than line width of aniline (1.073 G). This means an interactive force exists between polyaniline and carbon black. Linewidth variance is under influence of interactions between electron spinning and surroundings, spinning motion or structural rearrangement of copolymer. Thus the linewidth of PANI/CB(30) is maximum due to large interaction between polyaniline and carbon black. This indirectly indicates that polyaniline and carbon black are doped with each other evenly so that interactive force is proportional to the amount of carbon black being added.
Spin Concentration; Ns
Area under EPR spectrum is about equal to (ΔHpp)2×h while h is height. Under the same conditions, use DPPH as reference material, number of unpaired spin electrons in the system is learned from area size. Refer to the list 1, electron spin concentration (Ns) of each composite from largest to smallest is PANI/CB(30)>PANI/CB(20)>PANI/CB(15)>PANI/CB(10)>PANI/CB(5)>PANI. Spin concentration of PANI/CB(30) is largest and this means this sample has more spin electrons than others and it is expected that PANI/CB(30) should have highest conductivity. Moreover, spin electrons of PANI is only 1/34000 of spin electrons of PANI/CB(30). It follows that addition of carbon black is helpful to generating spin electrons of polyaniline. The amount of carbon black being added is also related to the number of spin electrons generated. Along with increasing ratio of carbon black, spin concentration also increases and it is expected conductivity also becomes higher.
Spin-Spin Relaxation Time; T2
A spin relaxation process is that an electron turns from high-energy state to low-energy state by electron transfer induction of similar electrons while a spin-spin relaxation is caused by energy difference between excited electron and electrons nearby and the spin-spin relaxation time (T2) is determined by linewidth in accordance with equation (2):
wherein β is Bohr magneton (9.274×10−21 erg gauss−1), ΔH1/2 is Full Width Half Height of absorption peak(gauss), and η is a constant (1.054×10−27 ergs).
Through the list 1, it is found that T2 value of different PANI/CB composites with various amount of carbon black reduces from 6.34×10−9 sec to 2.98×10−9 sec (PANI/CB(5)→PANI/CB(30)) while PANI itself has highest T value (3.05×10−8s). T2 value is affected by different electronic environment. Due to different ratio of PANI/CB, various electronic environments are available. Therefore, it is indicated that spin-spin relaxation time is inversely proportional to linewidth and is reduced along with increasing of carbon black.
Conductivity
Polyaniline is a (quasi-one-dimensional conductive polymer. After protonation, polyaniline turns from insulating states into conducting states. In the present invention, polyaniline is doped with protonic acid such as hydrochloric acid so as to produce polyaniline in emeraldine salt form. The emeraldine salt of polyaniline is polymerized in the presence of carbon black to produce conductive composite material. Measure resistance of the composite material and calculate conductivity by an equation (3).
σ=(1/R)×(h/A) (3)
wherein conductivity has the unit of siemens per centimeter S/cm, R is resistance (Ω), h and A are respectively thickness (cm) and area (cm2) of a test piece.
Refer to list 2, it is found that conductivity of composites from largest to smallest is: CB>PANI/CB(30)>PANI/CB(20)>PANI/CB(15)>PANI/CB(10)>PANI/CB(5)>PANI. This is consistent with electron spin concentration (Ns). It follows that the larger the electron spin concentration is, the higher the conductivity is. Along with increasing ratio of carbon black, bridging effect is increased so that conductivity of composite is getting higher.
After the composite being added into organic modified organic modified siloxane (Ormosil), the conductivity is reduced to 1%. This is due to that siloxane (Ormosil) is not conductive and addition of conductive polymer makes the siloxane have conductivity above 10−3 S/cm. According to the list 3, when PANI/CB composite is added into Ormosil, conductivity of mixtures increases along with ratio of carbon black in the composite or the amount of PANI/CB composite being added. Within the ratio ranging from 10-30%, non-conductive Ormosil is turned into another form with conductivity above 10−3 S/cm.
Scanning Electron Microscope (SEM) and Transmission Electron Microscope (TEM) Analysis
Refer to
Refer from
Microwave Absorbing Property Analysis of PANI/CB
Add powder of CB, PANI/CB(10), PANI/CB(20) and PANI/CB(30) composite into epoxy resin in weight ratio of 3/7 and the mixture is made into 15 cm×15 cm test pieces with thickness of 0.2 cm for performing microwave absorbing tests with frequency ranging 2-18 Ghz and 18-40 GHz. Refer to
Refer to
Salt Spray Test
6061-T6 and 2024-T3 aluminum alloy sheets coated with organic siloxane nanocomposite material containing polyaniline/carbon black coatings are set into a salt spray testing chamber while testing procedure and testing parameters are standardized under standard of ASTM B117. Use a 300× metallurgical microscope to observe surfaces of test sheets at 24-hour intervals. According to military specification MIL-C-81706/5541, number of rust spot within 100 mm test area should be no more than two. Moreover, chemical conversion coatings basically should be resistant to salt spray corrosion for at least 168 hours.
Refer to
After the salt spray test, a metallurgical microscope is used to observe corrosion on surface of aluminum alloy. After 7 days of test period, both 6061-T6 and 2024-T3 blank aluminum alloy sheets (without coating) have quite large rusted area while aluminum alloy sheets coated with organic siloxane (Ormosil) has only small area of rust. Taking PANI/CB(20) as an example, refer from
In summary, polyaniline/carbon black composite of the present invention increases conductivity of polyaniline and is applied to corrosion resistant conductive coatings and microwave absorption dielectric material.
Additional advantages and modifications will readily occur to those skilled in the art. Therefore, the invention in its broader aspects is not limited to the specific details, and representative devices shown and described herein. Accordingly, various modifications may be made without departing from the spirit or scope of the general inventive concept as defined by the appended claims and their equivalents.