IP Library › Granted Patent US 10,943,708
Granted Patent B2
US 10,943,708 · App. 15/502,332 · Granted Mar 9, 2021

System and method for metallic isotope separation by a combined thermal-vacuum distillation process

Inventors: Richard Ray Johnson (Vancouver, CA); William Z. Gelbart (Vancouver, CA); Brian Abeysekera (Burnaby, CA); Lidia Matei (Saskatoon, CA); Glenn McRae (Ottawa, CA)
G21G1/001B01D5/0057B01D7/00B01D15/08C01G99/003C01G99/006G21G1/02G21G1/10H05H6/00C01P2006/80G21G2001/0042
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Quick Facts
Patent No.
US 10,943,708
App. No.
15/502,332
Granted
Mar 9, 2021
Kind
B2
Abstract

A process for the separation of 99m Tc from molybdenum targets is described. The method for separation of 99m Tc isotope from molybdenum targets includes: i) providing an initial multicomponent mixture of elements, the mixture containing 99m Tc; ii) dissolving the multicomponent mixture of elements with an oxidizing agent to oxidize the mixture of elements; iii) heating the mixture of elements at a temperature sufficiently high enough to sublimate a vaporized compound containing 99m Tc; iv) condensing the vaporized compound containing 99m Tc to form a reaction product; v) adding a base to the condensed reaction product to dissolve the 99m Tc containing reaction product to form sodium pertechnetate (Na 99m TcO 4 ); and vii) purifying the crude solution of sodium pertechnetate Na 99m Tc04 using column chromatography to provide the 99m Tc isotope as a radiochemical compound.

Claims (27)

1. An apparatus for separation of radioisotopes, comprising:

a dissolution cell for placing a molybdenum target for heating and dissolution;

a thermal separation unit comprising a reaction chamber to separate volatile vapors of radioisotopes, the thermal separation unit being in communication with the dissolution cell;

a vacuum line connected to said thermal separation unit to reduce the pressure for sublimation; and

a condenser unit connected to said thermal separation unit and associated with a collection vial to collect a condensed product from said condenser unit, wherein the condenser unit is funnel shaped and adapted to capture said volatile vapors of the radioisotopes,

wherein said funnel shaped condenser unit has a straight region of a larger diameter followed by an angled region including a smaller diameter relative to the larger diameter, and

wherein said straight region of said funnel shaped condenser unit is heated to a temperature in a range of from about 400° C. to about 600° C. to keep said radioisotopes in a vapor state and said angled region of said funnel shaped condenser unit is held at a temperature below 200° C.

2. The apparatus for separation of radioisotopes according to claim 1 , wherein the condenser unit connected to said thermal separation unit collects condensed product from a lower region of the condenser unit.

3. The apparatus for separation of radioisotopes according to claim 1 , further comprising:

a purification unit.

4. The apparatus for separation of radioisotopes according to claim 3 , wherein said purification unit comprises a plurality of chromatographic units and reagent reservoirs.

5. The apparatus for separation of radioisotopes according to claim 3 , wherein said thermal separation unit and said purification unit are embedded in a lead shielded enclosure.

6. The apparatus for separation of radioisotopes according to claim 1 , wherein the reaction chamber is made of quartz glass for an oxidation process at temperatures in a range of between about 30 degrees Centigrade (° C.) to about 850° C.

7. The apparatus for separation of radioisotopes according to claim 1 , wherein the collection vial includes a sodium hydroxide solution.

8. The apparatus for separation of radioisotopes according to claim 1 , wherein said reaction chamber is equipped with an admission port connected to an admission tube for inserting an isotopic mixture into said reaction chamber.

9. The apparatus for separation of radioisotopes according to claim 8 , wherein said admission tube is coupled directly to said dissolution cell.

10. The apparatus for separation of radioisotopes according to claim 8 , wherein said admission tube is coupled to an oxygen line.

11. The apparatus for separation of radioisotopes according to claim 1 , further comprising:

a controller to control said dissolution cell and said thermal separation unit.

12. The apparatus for separation of radioisotopes according to claim 1 , wherein said reaction chamber is associated with the condenser unit and the condenser unit is coupled to an external vial as said collection vial.

13. The apparatus for separation of radioisotopes according to claim 1 , wherein said reaction chamber is associated with the condenser unit.

14. The apparatus for separation of radioisotopes according to claim 13 , wherein the condensed product is collected from a bottom part of said condenser unit.

15. The apparatus for separation of radioisotopes according to claim 1 , wherein said condenser unit has a tapered diameter and is angled to the collection vial located outside said thermal separation unit.

16. The apparatus for separation of radioisotopes according to claim 1 , wherein the collection vial is coupled to the vacuum line.

17. The apparatus for separation of radioisotopes according to claim 1 , wherein the apparatus is controlled externally by an operator to separate the radioisotopes of the condensed product.

18. The apparatus for separation of radioisotopes according to claim 1 , wherein control of a liquid circulation in the apparatus is provided though electrically actuated valves.

19. The apparatus for separation of radioisotopes according to claim 1 , wherein an operational procedure is implemented on the apparatus to allow the recovery of Molybdenum.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 29, 2021
From: JOHNSON, RICHARD RAY; GELBART, WILLIAM Z.; ABEYSEKERA, BRIAN; MATEI, LIDIA; MCRAE, GLENN
To: BEST THERATRONICS LTD.
Reel/Frame 055078/0943 →
Continuity (2)
Provisional Application 62035589 · Aug 11, 2014
Related Publication 20170229202A1 · Aug 10, 2017