IP Library › Granted Patent US 10,961,224
Granted Patent B2
US 10,961,224 · App. 16/497,793 · Granted Mar 30, 2021

Triazinium cation forms and methods of making thereof

Inventors: Lynn Vogel Koplitz (New Orleans, LA); Clifton J. Stephenson (New Orleans, LA)
Assignee: Loyola University New Orleans
C07D401/14H01L51/0067C07B2200/13H01L51/05H01L51/50
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Quick Facts
Patent No.
US 10,961,224
App. No.
16/497,793
Granted
Mar 30, 2021
Kind
B2
Abstract

The present disclosure provides, among other things, compounds and crystalline forms of compounds thereof and methods of making and using such compounds and crystalline forms of compounds. Disclosed compounds and crystalline forms are useful in electronic materials, semiconductor materials, and optoelectronic materials and devices incorporating these materials and which exhibit desirable characteristics for the same.

Claims (22)

1. A crystalline form of Compound II

2. The crystalline form of claim 1 , characterized by one or more peaks in its Powder X-ray diffraction pattern selected from those at about 16.68, about 19.74, about 22.42, about 24.90, about 25.94, about 27.08, about 29.08, about 31.02, about 32.8, or about 33.72 degrees 2-theta.

3. The crystalline form of claim 1 , characterized by at least two peaks in its Powder X-ray diffraction pattern selected from those at about 16.68, about 19.74, about 22.42, about 24.90, about 25.94, about 27.08, about 29.08, about 31.02, about 32.8, or about 33.72 degrees 2-theta.

4. The crystalline form of claim 1 , characterized by at least three peaks in its Powder X-ray diffraction pattern selected from those at about 16.68, about 19.74, about 22.42, about 24.90, about 25.94, about 27.08, about 29.08, about 31.02, about 32.8, or about 33.72 degrees 2-theta.

5. The crystalline form of claim 1 , having a PXRD substantially similar to that depicted in FIG. 9 .

6. The crystalline form of claim 1 , characterized by a trigonal unit cell.

7. The crystalline form of claim 1 , wherein the crystalline solid is substantially free of amorphous Compound II.

8. The crystalline form of claim 1 , wherein the crystalline solid is substantially free of impurities.

9. The crystalline form of claim 1 , characterized by a band gap of about 1.8 eV.

10. The crystalline form of claim 1 , characterized by an electrical resistivity of about 6×10 2 ρ(Ωιη) measured at about room temperature.

11. The crystalline form of claim 1 , when it is placed in solution its solvated cation is characterized by three peaks in 1 H— MR at δ ppm selected from the group consisting of about 9.48, about 9.36, and about 4.50, and combinations thereof.

12. An organic semiconductor having a formula of Compound II.

13. An electronic device comprising the organic semiconductor having the formula of Compound II of claim 12 .

14. An electronic material comprising the organic semiconductor having the formula of Compound II of claim 12 .

15. The crystalline form of claim 1 , characterized in that it exhibits diamagnetism.

16. The crystalline form of claim 1 , characterized by a Piedfort Unit having face to face π-π stacking.

17. The crystalline form of claim 1 , comprising two cations and six anions so that the crystal has a non-zero octupolar moment.

18. The crystalline form of claim 1 , having a decomposition temperature of 383° C.

19. A process for producing the crystal 1,1′,1″-trimethyl-4,4′,4″-(1,3,5-triazin-2,4,6-triyl)tripyridinium trisiodide as defined in claim 1 , which comprises steps of:

dissolving 4-cyano-1-methylpyridinium iodide in methanol to form a mixture; and

adding Hg 2 Cl 2 , AgCl, or PbCl 2 to the mixture.

20. The crystalline form of claim 2 , characterized by its X-ray or neutron diffraction patterns corresponding to a trigonal unit cell with parameters of about a=23.86, b=23.86, c=7.26 Angstroms and about alpha=beta=90 degrees, gamma=120 degrees, and all equivalent permutations thereof.

Continuity (2)
Provisional Application 62478930 · Mar 30, 2017
Related Publication 20200024258A1 · Jan 23, 2020