Claims
- 1. In a camera tube which employs a photo-responsive target, the improvement which comprises employing as said target a photoconductive element characterized by a photoresponse in the visible and near infrared region to about 1.6.mu. wherein said photoconductive element comprises a solid, transparent and conductive surface, a layer of epoxy resin as a binder, and a coating of photoconductive silver sulfide said element being characterized both by a resistivity on the order of 1 .times. 10.sup.6 ohm-cm. and having a photoresponse in the visible and near infrared regions, and wherein said photoconductive silver sulfide is prepared by a method comprising the following steps:
- a. reacting an excess of silver cation in an aqueous acidic solution with an organic sulfur compound to provide a microcrystallite suspension predominantly comprising photoconductive beta-silver sulfide in the reaction solution, said reaction carried out at a temperature of from about 0.degree.-15.degree. C.;
- b. reacting excess silver cation in the reaction solution with an inorganic source of sulfide ion to provide for the overgrowth of silver sulfide on the microcrystallites; and,
- c. recovering the photoconductive silver sulfide produced thereby.
- 2. The camera tube of claim 1 wherein, in the preparation of the photoconductive element, the temperature of the reaction solution in preparing said microcrystallite suspension of silver sulfide is from about 0.degree.-5.degree. C.
- 3. The camera tube of claim 1 wherein, in the preparation of the photoconductive element, the silver cation used in preparing said silver sulfide is provided by silver nitrate.
- 4. The camera tube of claim 1 wherein, in the preparation of the photoconductive element, the organic sulfur compound used in preparing said silver sulfide is thiourea or thioacetamide.
- 5. The camera tube of claim 1 wherein, in the preparation of the photoconductive element, the reaction of the excess silver cation in the reaction solution with sulfide ion used in preparing said silver sulfide is carried out at a temperature of about 20.degree.-25.degree. C.
- 6. The camera tube of claim 1 wherein, in the preparation of the photoconductive element, the inorganic source of sulfide ion used in preparing said silver sulfide is an aqueous solution of sodium sulfide.
- 7. The camera tube of claim 1 wherein, in the preparation of the photoconductive element, the step of recovering the silver sulfide from the reaction solution is carried out by filtering the reaction solution.
- 8. The camera tube of claim 1 wherein, in the preparation of the photoconductive element, the solid, transparent and conductive surface is glass coated with tin oxide.
- 9. The camera tube of claim 1 wherein, in the preparation of the photoconductive element, said photoconductive silver sulfide is prepared by a method comprising the following steps:
- a. reacting silver nitrate with thioacetamide in an aqueous acidic solution of nitric acid, the silver nitrate providing a stoichiometric excess of silver ion to provide a microcrystallite suspension of photoconductive beta-silver sulfide in the reaction solution, said reaction carried out at a temperature of from about 0.degree.-5.degree. C.;
- b. reacting the excess silver cation from the silver nitrate in the reaction solution with a solution containing sodium sulfide to provide for the overgrowth of silver sulfide on the silver sulfide micrycrystallites; and
- c. recovering the photoconductive silver sulfide produced thereby.
- 10. In a camera tube which employs a photo-responsive target, the improvement which comprises employing as said target a photoconductive element characterized by a photoresponse in the visible and near infrared region to about 1.6.mu. wherein said photoconductive element comprises a solid, transparent and conductive surface, a layer of epoxy resin as a binder, and a coating of a photoconductive composite sulfide said element being characterized both by a resistivity on the order of 1 .times. 10.sup.6 ohm-cm. and having a photoresponse in the visible and near infrared regions, and wherein said composite sulfide is prepared by a method comprising the following steps:
- a. reacting an excess of silver cation in an aqueous acidic solution with an organic sulfur compound to provide a microcrystallite suspension predominantly comprising photoconductive beta-silver sulfide in the reaction solution, said reaction carried out at a temperature of from about 0.degree.-15.degree. C.;
- b. removing and washing said microcrystallites and introducing them into a second aqueous acidic reaction solution containing a water-soluble salt of a metal other than silver and a weak source of sulfide ion to promote the overgrowth of the sulfide of said other metal on said microcrystallites; and,
- c. recovering the photoconductive composite sulfide particles produced thereby.
- 11. The camera tube of claim 10 wherein, in the preparation of the photoconductive element, said other metal sulfide in the preparation of said composite sulfide is zinc sulfide.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a division of U.S. Pat. application Ser. No. 437,775 filed Jan. 30, 1974 by the same inventors, now U.S. Pat. No. 3,950,272.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
3832453 |
Slovonsky et al. |
Aug 1974 |
|
Non-Patent Literature Citations (2)
Entry |
Journal of Applied Physics, 37(4), Mar. 15, 1966, pp. 1670-1674. |
Proceedings Physical Society, vol. 50 (1938) pp. 374-384. |
Divisions (1)
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Number |
Date |
Country |
Parent |
437775 |
Jan 1974 |
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