High-precision electrifying constant-temperature test paper and preparation method thereof

文档序号:1683778 发布日期:2020-01-03 浏览:22次 中文

阅读说明:本技术 一种高精度通电恒温试纸及其制备方法 (High-precision electrifying constant-temperature test paper and preparation method thereof ) 是由 许银超 杜晓庆 冯俣航 沙力争 张学金 金光范 寇顺利 王黎航 于 2019-09-10 设计创作,主要内容包括:本发明公开了一种高精度通电恒温试纸,包括定性滤纸和分散于所述定性滤纸上的涂料和油墨,所述涂料和油墨的组分比为1:1-5;所述涂料为纤维素纳米纤维,所述油墨由以下组分制成的:氧化石墨烯1-5份、纤维素纳米微晶1份、改性碳纳米管10-50份。本发明还公开了一种高精度通电恒温试纸的制备方法,包括以下步骤:备料;制备纤维素纳米纤维;完成涂布操作,并风干;将碳纳米管的改性,获得改性碳纳米管溶液;将氧化石墨烯与纤维素纳米微晶的混合溶液加入改性碳纳米管溶液中,获得油墨;将滤纸平整,随后将滤纸打印油墨,获得试纸;将试纸进行裁切,获得通电恒温试纸。本发明能够制备涂料和油墨并分散于定性滤纸上,形成高精度通电恒温试纸。(The invention discloses high-precision electrifying constant-temperature test paper which comprises qualitative filter paper and paint and ink dispersed on the qualitative filter paper, wherein the component ratio of the paint to the ink is 1: 1-5; the coating is cellulose nanofiber, and the ink is prepared from the following components: 1-5 parts of graphene oxide, 1 part of cellulose nano-microcrystal and 10-50 parts of modified carbon nano-tube. The invention also discloses a preparation method of the high-precision electrified constant-temperature test paper, which comprises the following steps: preparing materials; preparing cellulose nano-fibers; finishing the coating operation and air-drying; modifying the carbon nano tube to obtain a modified carbon nano tube solution; adding the mixed solution of graphene oxide and cellulose nano-crystallites into the modified carbon nanotube solution to obtain ink; flattening the filter paper, and then printing ink on the filter paper to obtain test paper; and cutting the test paper to obtain the electrified constant-temperature test paper. The invention can prepare the coating and the printing ink and disperse the coating and the printing ink on qualitative filter paper to form high-precision electrified constant-temperature test paper.)

1. The utility model provides a high accuracy circular telegram constant temperature test paper which characterized in that: the coating comprises qualitative filter paper and a coating and an ink which are dispersed on the qualitative filter paper, wherein the ratio of the components of the coating to the ink is 1: 1-5; the coating is cellulose nanofiber, and the ink is prepared from the following components: 1-5 parts of graphene oxide, 1 part of cellulose nano-microcrystal and 10-50 parts of modified carbon nano-tube.

2. The high-precision electrifying constant-temperature test paper as claimed in claim 1, characterized in that: the modified carbon nano tube is modified by anthraquinone disulfonic acid.

3. A preparation method of high-precision electrified constant-temperature test paper is characterized by comprising the following steps: the method comprises the following steps:

the method comprises the following steps: preparing materials: taking qualitative filter paper as a raw material, and performing calendaring on the qualitative filter paper, wherein the calendaring pressure is 0.5-5 MPa;

step two: preparing cellulose nano-fibers: preparing 100mL of 1% cotton pulp suspension, adding 0.1g of sodium bromide and 0.02g of tempo (2,2,6, 6-tetramethyl piperidinyloxy free radical) reagent, stirring uniformly, adding 5mL of 0.15mol/L sodium hypochlorite solution, mixing uniformly, and adjusting the pH value of the mixed solution to 10 by using 0.1mol/L dilute hydrochloric acid solution to obtain a mixed reaction solution; then placing the mixed reaction solution in an ice water bath, stirring and reacting for 6 hours, and continuously dropwise adding a 0.1mol/L NaOH solution in the stirring process to maintain the pH value of the mixed reaction solution at 10; after the reaction is finished, 1% cellulose nanofiber solution can be obtained;

step three: the coating operation was completed and air dried: coating the cellulose nanofiber solution on qualitative filter paper, controlling the coating speed at 0.2-0.5m/min, and naturally drying in the air after coating;

step four: modifying the carbon nano tube to obtain a modified carbon nano tube solution: dissolving anthraquinone disulfonic acid in water, and controlling the concentration of the anthraquinone disulfonic acid to be 10-50 g/L; adding the carbon nano tube into an anthraquinone disulfonic acid solution, controlling the concentration of the carbon nano tube to be 10-50g/L, ultrasonically dispersing for 20-40min at the normal temperature by using an ultrasonic cell crusher at the power of 150-; then, redundant anthraquinone disulfonic acid is separated by a dialysis membrane with the aperture of 0.45 mu m, and dialysis is carried out for 12 to 36 hours, and water is changed once every 6 hours; the anthraquinone disulfonic acid is adsorbed on the carbon nano tube through pi-pi bonds;

step five: adding the mixed solution of graphene oxide and cellulose nano-microcrystal into the modified carbon nano-tube solution,

obtaining an ink: firstly, adding single-layer or few-layer graphene oxide powder into a cellulose nano microcrystalline solution, and controlling the concentration to be 10-50 g/L; and then mixing the mixed solution of graphene oxide and cellulose nano-crystallites and the modified carbon nanotube solution in a volume ratio of 1: 1-10 mixing; uniformly mixing the mixed solution for 10-30min at the speed of 1000-; then, vacuumizing to remove bubbles in the ink, wherein the viscosity of the ink is controlled to be 8-12mPa & s;

step six: flattening the filter paper obtained in the third step, printing the ink prepared in the fifth step on the filter paper by using a Dimatix high-performance material printer, and printing for 1-20 times to control the thickness of the conductive layer to obtain test paper;

step seven: cutting the test paper in the sixth step to obtain electrified constant-temperature test paper, wherein the length and width of the electrified constant-temperature test paper are 1-5cm, and the area of the electrified constant-temperature test paper is 1-25cm2

4. The method for preparing a high-precision electrifying constant-temperature test paper substrate according to claim 3, which is characterized in that: the above-mentioned

The application method of the electrified constant-temperature test paper comprises the following steps: adopting a 6, 9, 12 or 24v direct-current voltage power supply or a battery pack to electrify and heat two ends of the diagonal line of the conductive heating layer; the resistance of the conductive heating layer is 100-1000 omega.

5. The method for preparing high-precision electrifying constant-temperature test paper according to claim 3, which is characterized in that: the heating performance regulation and control model of the electrified constant-temperature test paper comprises the following steps: t is t40=0.0011RA–26.734,ΔT=

1593000/RA-0.3744, wherein R is resistance, A is heating layer area, t40For the time required to heat to 40 ℃, Δ T is the difference between the maximum constant temperature and the starting temperature.

6. The method for preparing high-precision electrifying constant-temperature test paper according to claim 3, which is characterized in that: what is needed is

The preparation method of the cellulose nano-microcrystal in the step five comprises the following steps:

step 51: qualitative filter paper is used as a raw material and is cut into the size of 1 multiplied by 2 cm;

step 52: dipping 10g of cut filter paper and 100mL of 3% NaOH solution for pretreatment, and keeping the temperature at 50 ℃ for 2 h;

step 53: suction-filtering and washing by using a 1G3 sand core funnel;

step 54: after the slurry is defibered and filtered again, the slurry is put into 100mL of 64-65% sulfuric acid solution and hydrolyzed at the constant temperature of 45 ℃, and in the hydrolysis process, a magnetic stirrer is used for stirring, and the speed is controlled at 5000-1000 rpm;

step 55: adding 900mL of water after 2h to terminate the reaction;

step 56: adding 10% NaOH solution, adjusting pH to 7, then dialyzing, wherein the cut-off molecular weight of the dialysis membrane is 12000-14000, dialyzing for 24-72h, and changing water every 12h to obtain the 1% CNC solution.

[ technical field ] A method for producing a semiconductor device

The invention relates to the technical field of heating test paper, in particular to the technical field of high-precision electrifying constant-temperature test paper and a preparation method thereof.

[ background of the invention ]

The microfluidic detection technology is an analysis detection technology for controlling, processing and analyzing a very small amount of fluid by using a micro-pipeline, and has very high scientific and commercial potential. The micro-fluidic device has small volume, low energy consumption and strong portability, and can complete biological or chemical experiments which can be realized only by large-scale instruments in a conventional laboratory on a chip with a plurality of square centimeters. Through the realization of the concept of Lab-on-a-chip (LOC) or micro total analysis system (mu TAS), the microfluidic technology has great application prospect in the fields of molecular biology, analytical chemistry, on-site instant medical diagnosis and the like.

Compared with the microfluidic substrate in the common sense, the paper-based microfluidic device is very suitable for biochemical detection of resource hiding conditions. As one of analytical chemical detection devices, paper-based microfluidic devices are low-cost devices that can be used for diagnostics, poc (point of care) detection, allergen and biometric detection, food and drinking water quality monitoring, and the like. From the present, the application of paper-based devices to medical diagnostics and water quality assessment, such as low cost and rapid detection, is becoming mature and is being explored by more and more researchers.

In addition, due to the characteristics of low sample amount, high analysis speed, simple analysis method, low automation degree and the like, the paper-based device is widely applied to cell analysis, DNA detection, enzyme analysis, microarray spot diagnosis, high-flux smart light scanning and the like by researchers.

The biological paper-based microfluidic device requiring enzymatic reaction needs to provide a certain reaction temperature due to the requirement of enzyme activity in the reaction process. While paper-based microfluidic technology based on enzyme reaction is becoming a focus of research, the development of technology for providing the ideal temperature required for enzyme reaction has not been advanced.

At present, the conductive heating ink formula reported in the existing literature reports is mainly compounded, and various modification methods are also reported. Therefore, a new modification method is needed to solve the problem of carbon nanotube dispersibility.

Meanwhile, the heating rate of the conductive heating paper substrate after being electrified and whether the final temperature is maintained at 40 ℃ are two main technical indexes for measuring the heating performance, and no relevant solution reported in documents is found in the current relevant research. Therefore, the problem of regulating and controlling the temperature rising performance of the conductive heating test paper needs to be solved.

[ summary of the invention ]

The invention aims to solve the problems in the prior art and provides high-precision electrifying constant-temperature test paper and a preparation method thereof, which can finish the preparation of paint and ink and disperse the paint and the ink on qualitative filter paper respectively so as to form the high-precision electrifying constant-temperature test paper. The raw material carbon nano tube is modified by the tube, so that the problem of dispersibility of the carbon nano tube is solved; the temperature control model of the invention can be used for quickly and effectively designing the conducting layer and improving the heating efficiency.

In order to achieve the purpose, the invention provides high-precision electrifying constant-temperature test paper which comprises qualitative filter paper and paint and ink dispersed on the qualitative filter paper, wherein the component ratio of the paint to the ink is 1: 1-5; the coating is cellulose nanofiber, and the ink is prepared from the following components: 1-5 parts of graphene oxide, 1 part of cellulose nano-microcrystal and 10-50 parts of modified carbon nano-tube.

Preferably, the modified carbon nanotube is modified with anthraquinone disulfonic acid.

The invention also provides a preparation method of the high-precision electrified constant-temperature test paper, which comprises the following steps:

the method comprises the following steps: preparing materials: taking qualitative filter paper as a raw material, and performing calendaring on the qualitative filter paper, wherein the calendaring pressure is 0.5-5 MPa;

step two: preparing cellulose nano-fibers: preparing 100mL of 1% cotton pulp suspension, adding 0.1g of sodium bromide and 0.02g of tempo (2,2,6, 6-tetramethyl piperidinyloxy free radical) reagent, stirring uniformly, adding 5mL of 0.15mol/L sodium hypochlorite solution, mixing uniformly, and adjusting the pH value of the mixed solution to 10 by using 0.1mol/L dilute hydrochloric acid solution to obtain a mixed reaction solution; then placing the mixed reaction solution in an ice water bath, stirring and reacting for 6 hours, and continuously dropwise adding a 0.1mol/L NaOH solution in the stirring process to maintain the pH value of the mixed reaction solution at 10; after the reaction is finished, 1% cellulose nanofiber solution can be obtained;

step three: the coating operation was completed and air dried: coating the cellulose nanofiber solution on qualitative filter paper, controlling the coating speed at 0.2-0.5m/min, and naturally drying in the air after coating;

step four: modifying the carbon nano tube to obtain a modified carbon nano tube solution: dissolving anthraquinone disulfonic acid in water, and controlling the concentration of the anthraquinone disulfonic acid to be 10-50 g/L; adding the carbon nano tube into an anthraquinone disulfonic acid solution, controlling the concentration of the carbon nano tube to be 10-50g/L, ultrasonically dispersing for 20-40min at the normal temperature by using an ultrasonic cell crusher at the power of 150-; then, redundant anthraquinone disulfonic acid is separated by a dialysis membrane with the aperture of 0.45 mu m, and dialysis is carried out for 12 to 36 hours, and water is changed once every 6 hours; the anthraquinone disulfonic acid is adsorbed on the carbon nano tube through pi-pi bonds;

step five: adding the mixed solution of graphene oxide and cellulose nano-microcrystal into the modified carbon nano-tube solution to obtain the printing ink: firstly, adding single-layer or few-layer graphene oxide powder into a cellulose nano microcrystalline solution, and controlling the concentration to be 10-50 g/L; and then mixing the mixed solution of graphene oxide and cellulose nano-crystallites and the modified carbon nanotube solution in a volume ratio of 1: 1-10 mixing; uniformly mixing the mixed solution for 10-30min at the speed of 1000-; then, vacuumizing to remove bubbles in the ink, wherein the viscosity of the ink is controlled to be 8-12mPa & s;

step six: flattening the filter paper obtained in the third step, printing the ink prepared in the fifth step on the filter paper by using a Dimatix high-performance material printer, and printing for 1-20 times to control the thickness of the conductive layer to obtain test paper;

step seven: cutting the test paper in the sixth step to obtain electrified constant-temperature test paper, wherein the length and width of the electrified constant-temperature test paper are 1-5cm, and the area of the electrified constant-temperature test paper is 1-25cm2

Preferably, the use method of the power-on constant temperature test paper comprises the following steps: adopting a 6, 9, 12 or 24v direct-current voltage power supply or a battery pack to electrify and heat two ends of the diagonal line of the conductive heating layer; the resistance of the conductive heating layer is 100-1000 omega.

Preferably, the heating performance regulation model of the electrified constant-temperature test paper is as follows: t is t400.0011 RA-26.734, and delta T1593000/RA-0.3744, wherein R is resistance, A is heating layer area, T is heating layer area40For the time required to heat to 40 ℃, Δ T is the difference between the maximum constant temperature and the starting temperature.

Preferably, the preparation method of the cellulose nano-crystallite in the step five comprises the following steps:

step 51: qualitative filter paper is used as a raw material and is cut into the size of 1 multiplied by 2 cm;

step 52: dipping 10g of cut filter paper and 100mL of 3% NaOH solution for pretreatment, and keeping the temperature at 50 ℃ for 2 h;

step 53: suction-filtering and washing by using a 1G3 sand core funnel;

step 54: after the slurry is defibered and filtered again, the slurry is put into 100mL of 64-65% sulfuric acid solution and hydrolyzed at the constant temperature of 45 ℃, and in the hydrolysis process, a magnetic stirrer is used for stirring, and the speed is controlled at 5000-1000 rpm;

step 55: adding 900mL of water after 2h to terminate the reaction;

step 56: adding 10% NaOH solution, adjusting pH to 7, then dialyzing, wherein the cut-off molecular weight of the dialysis membrane is 12000-14000, dialyzing for 24-72h, and changing water every 12h to obtain the 1% CNC solution.

The invention has the beneficial effects that: the invention can finish the preparation of the coating and the printing ink, and the coating and the printing ink are respectively dispersed on the qualitative filter paper, thereby forming the high-precision electrified constant-temperature test paper. The raw material carbon nano tube is modified by the tube, so that the problem of dispersibility of the carbon nano tube is solved; the temperature control model of the invention can be used for quickly and effectively designing the conducting layer and improving the heating efficiency.

The features and advantages of the present invention will be described in detail by embodiments in conjunction with the accompanying drawings.

[ description of the drawings ]

FIG. 1 is a flow chart of a method for preparing high-precision electrifying constant-temperature test paper according to the invention;

FIG. 2 is a first temperature control model diagram of a high-precision electrifying constant-temperature test paper and a preparation method thereof;

FIG. 3 is a second diagram of a temperature control model of the high-precision energization constant-temperature test paper and the preparation method thereof.

[ detailed description ] embodiments

Referring to fig. 1, 2 and 3, the present invention includes qualitative filter paper and paint and ink dispersed on the qualitative filter paper, wherein the paint and ink have a composition ratio of 1: 1-5; the coating is cellulose nanofiber, and the ink is prepared from the following components: 1-5 parts of graphene oxide, 1 part of cellulose nano-microcrystal and 10-50 parts of modified carbon nano-tube.

Specifically, the modified carbon nanotube is modified by anthraquinone disulfonic acid.

The invention also comprises the following steps:

the method comprises the following steps: preparing materials: taking qualitative filter paper as a raw material, and performing calendaring on the qualitative filter paper, wherein the calendaring pressure is 0.5-5 MPa;

step two: preparing cellulose nano-fibers: preparing 100mL of 1% cotton pulp suspension, adding 0.1g of sodium bromide and 0.02g of tempo (2,2,6, 6-tetramethyl piperidinyloxy free radical) reagent, stirring uniformly, adding 5mL of 0.15mol/L sodium hypochlorite solution, mixing uniformly, and adjusting the pH value of the mixed solution to 10 by using 0.1mol/L dilute hydrochloric acid solution to obtain a mixed reaction solution; then placing the mixed reaction solution in an ice water bath, stirring and reacting for 6 hours, and continuously dropwise adding a 0.1mol/L NaOH solution in the stirring process to maintain the pH value of the mixed reaction solution at 10; after the reaction is finished, 1% cellulose nanofiber solution can be obtained;

step three: the coating operation was completed and air dried: coating the cellulose nanofiber solution on qualitative filter paper, controlling the coating speed at 0.2-0.5m/min, and naturally drying in the air after coating;

step four: modifying the carbon nano tube to obtain a modified carbon nano tube solution: dissolving anthraquinone disulfonic acid in water, and controlling the concentration of the anthraquinone disulfonic acid to be 10-50 g/L; adding the carbon nano tube into an anthraquinone disulfonic acid solution, controlling the concentration of the carbon nano tube to be 10-50g/L, ultrasonically dispersing for 20-40min at the normal temperature by using an ultrasonic cell crusher at the power of 150-; then, redundant anthraquinone disulfonic acid is separated by a dialysis membrane with the aperture of 0.45 mu m, and dialysis is carried out for 12 to 36 hours, and water is changed once every 6 hours; the anthraquinone disulfonic acid is adsorbed on the carbon nano tube through pi-pi bonds;

step five: adding the mixed solution of graphene oxide and cellulose nano-microcrystal into the modified carbon nano-tube solution to obtain the printing ink: firstly, adding single-layer or few-layer graphene oxide powder into a cellulose nano microcrystalline solution, and controlling the concentration to be 10-50 g/L; and then mixing the mixed solution of graphene oxide and cellulose nano-crystallites and the modified carbon nanotube solution in a volume ratio of 1: 1-10 mixing; uniformly mixing the mixed solution for 10-30min at the speed of 1000-; then, vacuumizing to remove bubbles in the ink, wherein the viscosity of the ink is controlled to be 8-12mPa & s;

step six: flattening the filter paper obtained in the third step, printing the ink prepared in the fifth step on the filter paper by using a Dimatix high-performance material printer, and printing for 1-20 times to control the thickness of the conductive layer to obtain test paper;

step seven: cutting the test paper in the sixth step to obtain electrified constant-temperature test paper, wherein the length and width of the electrified constant-temperature test paper are 1-5cm, and the area of the electrified constant-temperature test paper is 1-25cm2

Specifically, the use method of the electrified constant temperature test paper comprises the following steps: adopting a 6, 9, 12 or 24v direct-current voltage power supply or a battery pack to electrify and heat two ends of the diagonal line of the conductive heating layer; the resistance of the conductive heating layer is 100-1000 omega.

Specifically, the heating performance regulation model of the electrified constant-temperature test paper is as follows: t is t400.0011 RA-26.734, and delta T1593000/RA-0.3744, wherein R is resistance, A is heating layer area, T is heating layer area40For the time required to heat to 40 ℃, Δ T is the difference between the maximum constant temperature and the starting temperature.

Specifically, the preparation method of the cellulose nano-crystallite in the fifth step comprises the following steps:

step 51: qualitative filter paper is used as a raw material and is cut into the size of 1 multiplied by 2 cm;

step 52: dipping 10g of cut filter paper and 100mL of 3% NaOH solution for pretreatment, and keeping the temperature at 50 ℃ for 2 h;

step 53: suction-filtering and washing by using a 1G3 sand core funnel;

step 54: after the slurry is defibered and filtered again, the slurry is put into 100mL of 64-65% sulfuric acid solution and hydrolyzed at the constant temperature of 45 ℃, and in the hydrolysis process, a magnetic stirrer is used for stirring, and the speed is controlled at 5000-1000 rpm;

step 55: adding 900mL of water after 2h to terminate the reaction;

step 56: adding 10% NaOH solution, adjusting pH to 7, then dialyzing, wherein the cut-off molecular weight of the dialysis membrane is 12000-14000, dialyzing for 24-72h, and changing water every 12h to obtain the 1% CNC solution.

The working process of the invention is as follows:

the invention relates to high-precision electrifying constant-temperature test paper and a preparation method thereof, which are explained in the working process by combining with the attached drawings.

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