IP Library Granted Patent US 12,643,087
Granted Patent B2
US 12,643,087 · App. 18/358,466 · Granted Jun 2, 2026

Phase change adsorbents for chemical storage and separation applications

Inventors: Ever O. Velasquez (Berkeley, CA); Mercedes K. Taylor (Berkeley, CA); Colin A. Gould (Berkeley, CA); Jeffrey R. Long (Lafayette, CA)
Assignee: THE REGENTS OF THE UNIVERSITY OF CALIFORNIA
B01J20/226B01D53/02C07F3/06B01D2253/204B01D2257/102
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Quick Facts
Patent No.
US 12,643,087
App. No.
18/358,466
Granted
Jun 2, 2026
Kind
B2
Abstract

Metal organic frameworks are provided that exhibit a reversible phase change from a collapsed state to an expanded state. Due to this material property, these adsorbents exhibit stepped isotherms that have relevance in chemical storage and separations. The metal organic framework is M(LDP), where M is a metal selected from the group of Zn, Fe or Co and L is a ligand selected from the group of 1,4-benzenedipyrazolate (H 2 BDP), 2,5-pyridinedipyrazolate (H 2 PyDP), 2,5-pyrimidinedipyrazolate (H 2 PymDP), 2,5-pyrazinedipyrazolate (H 2 PyzDP), and 3,6-pyridazinedipyrazolate (H 2 PydDP). The step pressure position in the isotherm was changed by using nitrogen instead of carbon in the ring allowing for tunable aromatic interactions.

Claims (42)

1 . A composition comprising:

a metal organic framework M(LDP), where M is a metal and L is at least one ligand selected from the group of 2,5-pyridinedipyrazolate (H 2 PyDP), 2,5-pyrimidinedipyrazolate (H 2 PymDP), 2,5-pyrazinedipyrazolate (H 2 PyzDP), and 3,6-pyridazinedipyrazolate (H 2 PydDP);

wherein said metal organic framework exhibits a reversible phase change from a collapsed state to an expanded state with a change in environmental pressure.

2 . The metal organic framework of claim 1 , wherein said metal is a metal selected from the group consisting of Zn, Fe and Co.

3 . The metal organic framework of claim 2 , said framework comprising Zn(PyDP).

4 . The metal organic framework of claim 2 , said framework comprising Zn(PymDP).

5 . The metal organic framework of claim 2 , said framework comprising Zn(PyzDP).

6 . The metal organic framework of claim 2 , said framework comprising Zn(PydDP).

7 . The metal organic framework of claim 1 , wherein said ligand further comprises:

at least one first ligand selected from the group of ligands consisting of 2,5-pyridinedipyrazolate (H 2 PyDP), 2,5-pyrimidinedipyrazolate (H 2 PymDP), 2,5-pyrazinedipyrazolate (H 2 PyzDP), and 3,6-pyridazinedipyrazolate (H 2 PydDP); and

at least one second ligand selected from the group of ligands consisting of 1,4-benzenedipyrazolate (H 2 BDP), 2,5-pyridinedipyrazolate (H 2 PyDP), 2,5-pyrimidinedipyrazolate (H 2 PymDP), 2,5-pyrazinedipyrazolate (H 2 PyzDP), and 3,6-pyridazinedipyrazolate (H 2 PydDP).

8 . The method of claim 7 , wherein said first ligand and said second ligand of said metal organic framework are the same.

9 . A method for reversible gas storage, the method comprising:

(a) providing a metal organic framework M(LDP), where M is a metal selected from the group of Zn, Fe or Co and L is at least one ligand selected from the group of 2,5-pyridinedipyrazolate (H 2 PyDP), 2,5-pyrimidinedipyrazolate (H 2 PymDP), 2,5-pyrazinedipyrazolate (H 2 PyzDP), and 3,6-pyridazinedipyrazolate (H 2 PydDP); and

(b) adsorbing a gas to said metal organic framework;

(c) wherein said metal organic framework exhibits a reversible phase change from a collapsed state to an expanded state with a change in environmental pressure; and

(d) wherein said adsorbed gas is desorbed when the metal organic framework is in a collapsed state.

10 . The method of claim 9 , wherein the metal organic framework comprises Zn(PyDP), Zn(PymDP), Zn(PyzDP), or Zn(PydDP).

11 . The method of claim 9 , wherein the metal organic framework comprises a bed of Zn(BDP) and one or more of Zn(PyDP), Zn(PymDP), Zn(PyzDP), and Zn(PydDP) frameworks.

12 . The method of claim 9 , wherein the metal organic framework comprises:

a first ligand selected from the group of ligands consisting of 2,5-pyridinedipyrazolate (H 2 PyDP), 2,5-pyrimidinedipyrazolate (H 2 PymDP), 2,5-pyrazinedipyrazolate (H 2 PyzDP), and 3,6-pyridazinedipyrazolate (H 2 PydDP); and

at least one second ligand selected from the group of ligands consisting of 1,4-benzenedipyrazolate (H 2 BDP), 2,5-pyridinedipyrazolate (H 2 PyDP), 2,5-pyrimidinedipyrazolate (H 2 PymDP), 2,5-pyrazinedipyrazolate (H 2 PyzDP), and 3,6-pyridazinedipyrazolate (H 2 PydDP).

13 . The method of claim 9 , further comprising:

evaluating an adsorption isotherm for each metal organic framework configuration;

identifying an optimum pressure of gas using the adsorption isotherm of each metal organic framework; and

exposing the provided metal organic framework to a gas at an identified optimum pressure.

14 . A method for gas separations, the method comprising:

(a) providing a bed of one or more metal organic frameworks selected from the group M(LDP), where M is a metal and L is at least one ligand selected from the group of 2,5-pyridinedipyrazolate (H 2 PyDP), 2,5-pyrimidinedipyrazolate (H 2 PymDP), 2,5-pyrazinedipyrazolate (H 2 PyzDP), and 3,6-pyridazinedipyrazolate (H 2 PydDP);

(b) exposing the bed of metal organic frameworks to a flow of gases to be separated; and

(c) releasing adsorbed gases from the metal organic frameworks after a period of time;

(d) wherein said metal organic framework exhibits a reversible phase change from a collapsed state to an expanded state with a change in environmental pressure; and

(e) wherein said adsorbed gas is desorbed when the metal organic framework is in a collapsed state.

15 . The method of claim 14 , wherein said metal of said metal organic framework is a metal selected from the group consisting of Zn, Fe and Co.

16 . The method of claim 14 , wherein said metal organic framework is at least one framework selected from the group consisting of Zn(PyDP), Zn(PymDP), Zn(PyzDP), and Zn(PydDP).

17 . The method of claim 14 , wherein the metal organic framework comprises a bed of Zn(BDP) and one or more of Zn(PyDP), Zn(PymDP), Zn(PyzDP), and Zn(PydDP) frameworks.

18 . The method of claim 14 wherein said ligand of said metal organic framework comprises:

at least one first ligand selected from the group of ligands consisting of 2,5-pyridinedipyrazolate (H 2 PyDP), 2,5-pyrimidinedipyrazolate (H 2 PymDP), 2,5-pyrazinedipyrazolate (H 2 PyzDP), and 3,6-pyridazinedipyrazolate (H 2 PydDP); and

at least one second ligand selected from the group of ligands consisting of 1,4-benzenedipyrazolate (H 2 BDP), 2,5-pyridinedipyrazolate (H 2 PyDP), 2,5-pyrimidinedipyrazolate (H 2 PymDP), 2,5-pyrazinedipyrazolate (H 2 PyzDP), and 3,6-pyridazinedipyrazolate (H 2 PydDP).

19 . The method of claim 14 , further comprising:

evaluating an adsorption isotherm for each metal organic framework configuration;

identifying an optimum pressure of gas using the adsorption isotherm of each metal organic framework; and

exposing the provided metal organic framework to a gas at an identified optimum pressure.

Assignments (2)
CONFIRMATORY LICENSE Recorded Feb 26, 2024
From: REGENTS OF THE UNIVESITY OF CALIFORNIA
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 066556/0016 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 14, 2023
From: VELASQUEZ, EVER O.; TAYLOR, MERCEDES K.; GOULD, COLIN A.; LONG, JEFFREY R.
To: THE REGENTS OF THE UNIVERSITY OF CALIFORNIA
Reel/Frame 064582/0788 →
Continuity (2)
Provisional Application 63391833 · Jul 25, 2022
Related Publication 20240024848A1 · Jan 25, 2024
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