CN1769881A - Tin dioxide based nano gas sensitive material and preparation method thereof - Google Patents
Tin dioxide based nano gas sensitive material and preparation method thereof Download PDFInfo
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- CN1769881A CN1769881A CN 200410052061 CN200410052061A CN1769881A CN 1769881 A CN1769881 A CN 1769881A CN 200410052061 CN200410052061 CN 200410052061 CN 200410052061 A CN200410052061 A CN 200410052061A CN 1769881 A CN1769881 A CN 1769881A
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- stannic oxide
- gas sensitive
- nano
- sensitive material
- gas
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Abstract
The invention relates to a stannic oxide (SnO2) base nano air-sensitive material and method for making the same which comprises steps of: calculating and getting stannous chloride as mole ratio, proportioning with sodium dodecylbenzene sulfonate, potassium borohydride, antimony oxide and ethyl silicate; grinding, drying, prefiring to get stannic oxide nano powder; according to the mole proportion, doping carbon nano tube with the produced stannic oxide nano powder. The inventive method has the advantages of being lower cost than doping noble metallic elements in the stannic oxide (SnO2) base nano air-sensitive material, and of having high sensitivity.
Description
Technical field
The present invention relates to by means of the chemistry of measuring material or physical property is tested or the technical field of analysis of material, specifically relate to a kind of materials of electronic components, particularly relate to a kind of tin ash (SnO
2) basic gas-sensitive nano material and preparation method.
Background technology
Because tin dioxide nano material has good gas-sensitive property, so be widely used in the gas sensor manufacturing industry.For sensitivity and selectivity, response speed and the release time of improveing this class sensor, the research work that the researcher did in the industry at present mainly is the following aspects: 1. make material granule thin as far as possible, preferably make nano material, increase the unit specific surface area, improve sensitivity; 2. gas sensitive is made film, so that the contact area of increase and gas improves sensitivity; 3. mix precious metal element or rare earth element, further improve the sensitivity and the selectivity of material.Although these methods can have been improved the gas-sensitive property of tin ash sill effectively, also exist complex process, the wayward and cost of microstructure is than problems such as height.State Intellectual Property Office's Granted publication on November 19th, 2003 a kind of " preparation method who contains tin dioxide-base nanometer crystal powder and tin dioxide thick film methane sensitive material " (Granted publication number is: patent of invention 1128479), the disclosed technical scheme of this patent of invention is in proportion Al
2O
3, SiO
2Trickle powder and Pd catalyzer add in the butter of tin solution of specific pH value scope, are carrying out hydrothermal chemical reaction and activation processing more than 100 ℃, obtain the tin dioxide nanocrystal composite granule.The technique effect of the tin dioxide nanocrystal composite powder material that this patented technology obtained does not see Table at patent documentation and states, and does not appear in the newspapers in other document yet, but still has above-mentioned deficiency with regard to the technical scheme of its disclosure itself.
Summary of the invention:
In view of there is above-mentioned deficiency in prior art, technical matters to be solved by this invention is to seek a kind of new prescription, simplifies preparation technology, adjusts the microstructure of stannic oxide based nanometer gas sensitive, improves its gas-sensitive property.
The technical solution that the present invention solves the problems of the technologies described above is:
A kind of stannic oxide based nanometer gas sensitive is characterized in that: it is composed of the following components to press this gas sensitive of net value mole (part) proportioning:
Stannous chloride (SnCl
22H
2O) 1;
Neopelex (C
18H
29NaO
3S) 1~2;
Potassium borohydride (KBH
4) 2;
Antimony oxide (Sb
2O
3) 0.01~0.04;
Ethyl orthosilicate (C
6H
20O
4Si) 0.02~0.05;
Carbon nano-tube 0.1~0.4.
A kind of method for preparing above-mentioned stannic oxide based nanometer gas sensitive is calculated at first in molar ratio and is taken by weighing that stannous chloride, neopelex, potassium borohydride, antimony oxide and ethyl orthosilicate are prepared burden, ground, dry, pre-burned gets the tin ash (SnO of antimony and silicon doping
2) nano-powder, it is characterized in that: in making stannic oxide nano powder, mix carbon nano-tube and be uniformly dispersed by described mol ratio.
Because CNT has hollow structure and big wall surface amasss, gas had very big adsorptive power, especially have the physical characteristics of high temperature with regard to gasifying of meeting more than 600 ℃, the sensitivity of the gas sensor of feasible use stannic oxide based nanometer gas sensitive made of the present invention increases significantly.In order to check effect of the present invention, the creator uses stannic oxide based nanometer gas sensitive of the present invention to make heater-type thick film gas-sensitive element and surveys, and under the heating voltage of V=4~5v alcohol gas is had higher sensitivity.Measured result: when alcohol gas concentration was 500ppm, sensitivity K value can reach more than 20.The creator also uses scanning electron microscope that prepared element is carried out microscopic observation, finds that the more existing same type of material of its porosity obviously increases, and is evenly distributed, and is network-like.In addition, the more common stannic oxide based nanometer gas sensitive low 50% of mixing precious metal element of the cost of stannic oxide based nanometer gas sensitive of the present invention.
Embodiment:
The present invention is described further below in conjunction with concrete example, but scope of the present invention is not limited to these specific examples.
Embodiment 1:
By net value mole (part) than taking by weighing 1 part of stannous chloride; 1 part of neopelex; 2 parts of potassium borohydrides; 0.03 part of antimony oxide; 0.02 part of ethyl orthosilicate; After 0.3 part of the carbon nano-tube by following step preparation:
A) earlier with reactant particle stannous chloride and half neopelex each self-grind 10 minutes in agate mortar, mixed grinding is 10 minutes again, then with same each self-grind 10 minutes in agate mortar earlier of reactant particle potassium borohydride and remaining half neopelex, mixed grinding is 10 minutes again, final product with above-mentioned two steps mixes at last, ground 30 minutes, and in air, placed 12 hours;
B) ethyl orthosilicate is used an amount of ethanol dilution, drip deionized water and produce creaming, again antimony oxide is dissolved with appropriate hydrochloric acid, drip deionized water and produce creaming, the powder that two kinds of creamings and last step was made until PH=6., stir 1h in magnetic stirring apparatus, use ethanol and deionized water cyclic washing then, the gained particle is put into the drying box inner drying;
C) the dry thing of steps A and B gained is mixed the back 800 ℃ of annealing in process 3 hours, make stannic oxide nano powder.
D) mix 0.3 part of carbon nano-tube in the stannic oxide nano powder with step C gained, through fully ball milling or ultrasonic dispersing evenly promptly get novel stannic oxide based nanometer gas sensitive of the present invention.Because the stannic oxide nano powder and the carbon nano-tube itself of step C gained all are nano level, the purpose of ball milling is that even carbon nanotube is distributed in the tin dioxide gas-sensitive material, even by the pore that sintering produced in the process of making element, and network-like distribution, help the absorption and the desorb of gas molecule, the sensitivity that improves obtained gas sensor.
With the resistive gas sensor that the obtained novel stannic oxide based nanometer gas sensitive of above-mentioned steps is produced, it is as shown in table 1 with the heating voltage running parameter to record (K Ω) value of resistance in air and the sensitivity in the 500ppm alcohol gas.
Embodiment 2:
Earlier by net value mole (part) than taking by weighing 1 part of stannous chloride; 2 parts of neopelexes; 2 parts of potassium borohydrides; 0.04 part of antimony oxide; Behind 0.02 part of the ethyl orthosilicate, 0.4 part of carbon nano-tube, prepare novel stannic oxide based nanometer gas sensitive of the present invention by example 1 identical step and order.
The resistive gas sensor that novel stannic oxide based nanometer gas sensitive is produced with this example obtained, it is as shown in table 2 with the heating voltage running parameter to record (K Ω) value of resistance in air and the sensitivity in the 500ppm alcohol gas.
Embodiment 3:
Earlier by net value mole (part) than taking by weighing 1 part of stannous chloride; 1 part of neopelex; 2 parts of potassium borohydrides; 0.01 part of antimony oxide; Prepare novel stannic oxide based nanometer gas sensitive of the present invention by example 1 identical step and order behind 0.05 part of the ethyl orthosilicate, 0.1 part of carbon nano-tube.
The resistive gas sensor that novel stannic oxide based nanometer gas sensitive is produced with this example obtained, it is as shown in table 3 with the heating voltage running parameter to record (K Ω) value of resistance in air and the sensitivity in the 500ppm alcohol gas.
Table 1:
Table 2:
Table 3:
Claims (2)
1, a kind of stannic oxide based nanometer gas sensitive is characterized in that: it is composed of the following components to press this gas sensitive of net value mole (part) proportioning:
Stannous chloride (SnCl
22H
2O) 1;
Neopelex (C
18H
29NaO
3S) 1~2;
Potassium borohydride (KBH
4) 2;
Antimony oxide (Sb
2O
3) 0.01~0.04;
Ethyl orthosilicate (C
6H
20O
4Si) 0.02~0.05;
Carbon nano-tube 0.1~0.4.
2, the method for preparing the described stannic oxide based nanometer gas sensitive of claim 1 is calculated at first in molar ratio and is taken by weighing that stannous chloride, neopelex, potassium borohydride, antimony oxide and ethyl orthosilicate are prepared burden, ground, dry, pre-burned gets tin ash (SnO
2) nano-powder, it is characterized in that: in making stannic oxide nano powder, mix carbon nano-tube then and be uniformly dispersed by described mol ratio.
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CNB2004100520619A CN100383518C (en) | 2004-11-05 | 2004-11-05 | Tin dioxide based nano gas sensitive material and preparation method thereof |
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CNB2004100520619A CN100383518C (en) | 2004-11-05 | 2004-11-05 | Tin dioxide based nano gas sensitive material and preparation method thereof |
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CN1769881A true CN1769881A (en) | 2006-05-10 |
CN100383518C CN100383518C (en) | 2008-04-23 |
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Cited By (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN101581687B (en) * | 2009-06-24 | 2012-05-30 | 中南大学 | Cadmium sulfide coating carbon nano tube gas-sensitive material and manufacture method of gas-sensitive element |
CN102636522A (en) * | 2012-03-29 | 2012-08-15 | 浙江大学 | Graphene/ stannic oxide nanometer compounding resistance type film gas sensor and manufacturing method thereof |
CN101458221B (en) * | 2008-12-26 | 2012-08-22 | 尚沃医疗电子无锡有限公司 | Metallic oxide/carbon nanotube gas sensors |
CN104132987A (en) * | 2014-05-30 | 2014-11-05 | 中国石油化工股份有限公司 | Preparation method for gas-sensitive element for hydrocarbon gas detection |
CN107132253A (en) * | 2017-06-15 | 2017-09-05 | 上海因士环保科技有限公司 | The preparation method and gas sensor of a kind of air-sensitive film based on flexible substrate |
CN112225245A (en) * | 2019-06-28 | 2021-01-15 | 东北大学 | Rare earth element doped SnO2Basic high response SO2Method for preparing sensitive material |
CN112458791A (en) * | 2020-12-08 | 2021-03-09 | 马鞍山市康辉纸箱纸品有限公司 | Corrugated paper processing technology for improving easy glue opening of corrugated paper surface sizing agent |
Family Cites Families (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US4623424A (en) * | 1983-09-07 | 1986-11-18 | National Institute For Researches In Inorganic Materials | Process for producing tin oxide fibers |
CN1075886C (en) * | 1997-08-05 | 2001-12-05 | 中山大学 | Room temp. gas-sensitive device of nm. tin dioxide and its mfg. method |
CN1235231C (en) * | 2001-05-29 | 2006-01-04 | 华东理工大学 | Process for preparing light-colour electrically conductive Sb-dopped SnO2 powder |
US6940086B2 (en) * | 2001-09-28 | 2005-09-06 | Georgia Tech Research Corporation | Tin oxide nanostructures |
CN1171796C (en) * | 2002-08-28 | 2004-10-20 | 华北工学院 | Oxidation and coprecipitation process of preparing Sb-doped nano tin dioxide |
-
2004
- 2004-11-05 CN CNB2004100520619A patent/CN100383518C/en not_active Expired - Fee Related
Cited By (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN101458221B (en) * | 2008-12-26 | 2012-08-22 | 尚沃医疗电子无锡有限公司 | Metallic oxide/carbon nanotube gas sensors |
CN101581687B (en) * | 2009-06-24 | 2012-05-30 | 中南大学 | Cadmium sulfide coating carbon nano tube gas-sensitive material and manufacture method of gas-sensitive element |
CN102636522A (en) * | 2012-03-29 | 2012-08-15 | 浙江大学 | Graphene/ stannic oxide nanometer compounding resistance type film gas sensor and manufacturing method thereof |
CN104132987A (en) * | 2014-05-30 | 2014-11-05 | 中国石油化工股份有限公司 | Preparation method for gas-sensitive element for hydrocarbon gas detection |
CN107132253A (en) * | 2017-06-15 | 2017-09-05 | 上海因士环保科技有限公司 | The preparation method and gas sensor of a kind of air-sensitive film based on flexible substrate |
CN112225245A (en) * | 2019-06-28 | 2021-01-15 | 东北大学 | Rare earth element doped SnO2Basic high response SO2Method for preparing sensitive material |
CN112458791A (en) * | 2020-12-08 | 2021-03-09 | 马鞍山市康辉纸箱纸品有限公司 | Corrugated paper processing technology for improving easy glue opening of corrugated paper surface sizing agent |
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CN100383518C (en) | 2008-04-23 |
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