Claims
- 1. A nonaqueous electrolyte secondary battery comprising a primarily amorphous carbon material having a density of 1.3 to 2.1 g/cm.sup.3, a hydrogen/carbon (H/C) atomic ratio of 0.15 to 0.40, an amorphous structure, exhibiting peaks in the vicinity of 1350 cm.sup.-1 and 1600 cm.sup.-1 and no clear peak in the vicinity of 2700 cm.sup.-1 in a Raman spectrum analysis using an argon ion laser beam having a wavelength of 5,145 .ANG., exhibiting a peak in the vicinity of 120 to 130 ppm bs. TMS in NMR analysis and having electrical conductivity, with a resistivity of 10.sup.-3 to 10.sup.4 .OMEGA.cm at room temperature, as an electrode material, said carbon material being obtained by heat treating a non-heterocyclic polymer under an inert gas atmosphere at a temperature of 500.degree. to 1,500.degree. C.
- 2. The nonaqueous electrolyte secondary battery according to claim 1, wherein said battery is a lithium secondary battery.
- 3. A primarily amorphous carbon material obtained by heat-treating an organic, non-heterocyclic polymer compound under an inert gas atmosphere at a temperature of 500.degree. to 1500.degree. C., wherein said amorphous carbon material (1) has a hydrogen/carbon atomic ratio from 0.15 to 0.40, (2) a density from 1.3 to 2.1 g/cm.sup.3, (3) an amorphous structure, (4) exhibits peaks in the vicinity of 1350 cm.sup.1 and 1600 cm.sup.-1 and no clear peak in the vicinity of 2700 cm.sup.-1 in a Raman spectrum analysis using an argon ion laser beam having a wavelength of 5,145 .ANG., (5) exhibits a peak in the vicinity of 120 to 130 ppm, in NMR analysis, arising from aromatic cyclocondensation, and (6) has electrical conductivity, with a resistivity of 10.sup.-3 to 10.sup.4 .OMEGA.cm at room temperature.
- 4. The primarily amorphous carbon material described in claim 3, wherein the non-heterocyclic polymer is poly(p-phenylene).
- 5. A method for producing a primarily amorphous carbon material comprising heat-treating an organic, non-heterocyclic polymer compound, to about the carbonization temperature of said compound, under an inert gas at a temperature increasing from 500.degree. to 1500.degree. C. at a rate of heating within the range of 6.degree. C./hour to 300.degree. C./hour to form a primarily amorphous carbon material having a density from 1.3 to 2.1 g/cm.sup.3, a hydrogen/carbon atomic ratio from 0.15 to 0.40, electrical conductivity with a resistivity of 10.sup.-3 to 10.sup.4 .OMEGA.cm at room temperature and which exhibits peaks in the vicinity of 1350 cm.sup.-1 and 1600 cm.sup.-1 and no clear peak in the vicinity of 2700 cm.sup.-1 in a Raman spectrum analysis using an argon ion laser beam having a wavelength of 5,145 .ANG., and peaks in the vicinity of 120 to 130 ppm, in NMR analysis, arising from aromatic cyclocondensation.
- 6. The method for producing the primarily amorphous carbon material described in claim 5, wherein the non-heterocyclic polymer is poly(p-phenylene).
Priority Claims (3)
Number |
Date |
Country |
Kind |
3-329675 |
Nov 1991 |
JPX |
|
3-329676 |
Nov 1991 |
JPX |
|
4-075874 |
Feb 1992 |
JPX |
|
Parent Case Info
This application is a continuation of application Ser. No. 08/075,455, filed as PCT/JP92/01475 Nov. 11, 1992 published as WO93/10566 May 21, 1993, now abandoned.
US Referenced Citations (6)
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Continuations (1)
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Number |
Date |
Country |
Parent |
75455 |
Jun 1993 |
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