Claims
- 1. In a method for preparing ferroelectric ceramic microcrystals which comprises reacting a ferroelectric ceramic and pulverizing the reaction product, the improvement which comprises rapidly cooling the reaction product to pulverize it to obtain the ferroelectric ceramic microcrystals which comprise virtually single domain microcrystals.
- 2. The method of claim 1, wherein said rapidly cooling is at a temperature of about 10.degree. C./minute or more.
- 3. In the method of preparing the ferroelectric ceramic microcrystals of claim 1, the improvement wherein said ferroelectric ceramic microcrystals have values of half widths of peaks assigned to the (002) plane up to 15.5 degrees.
- 4. In a method for preparing ferroelectric ceramic microcrystals which comprises heating appropriate mixed starting powders which correspond to the ferroelectric ceramic microcrystals to obtain a reaction product and pulverizing the reaction product resulting from said heating, the improvement which comprises rapidly cooling the reaction product to pulverize the reaction product, whereby the ferroelectric ceramic microcrystals are obtained which comprise virtually single domain microcrystals.
- 5. The method of claim 4, wherein said rapidly cooling is at a temperature of about 10.degree. C./minute or more.
- 6. In a method for preparing ferroelectric ceramic microcrystals which comprises temporarily molding appropriate mixed starting powders which correspond to the ferroelectric ceramic microcrystals by a conventional wet or dry molding, heating the resulting shaped product to cause a solid phase reaction and pulverizing the product of the solid phase reaction, the improvement which comprises rapidly cooling the product of the solid phase reaction to thereby pulverize it and obtain the ferroelectric ceramic microcrystals which comprise virtually single domain microcrystals.
- 7. The method of claim 6, wherein said rapidly cooling is at a temperature of about 10.degree. C./minute or more.
- 8. In a method for preparing ferroelectric ceramic microcrystals which comprises temporarily molding appropriate mixed starting powders which correspond to the ferroelectric microcrystals by a conventional wet or dry molding, sintering the resultant shaped product and pulverizing the resulting product, the improvement which comprises rapidly cooling the sintered product to thereby pulverize the sintered product and obtain the ferroelectric ceramic microcrystals which comprise virtually single domain microcrystals.
- 9. The method of claim 8, wherein said rapidly cooling is at a temperature of about 10.degree. C./minute or more.
- 10. In a method for preparing ferroelectric ceramic microcrystals which comprises heating appropriate mixed starting powders which correspond to the ferroelectric microcrystals to obtain powdery product which has undergone a solid phase reaction during the heating, temporarily shaping the powdery product into a temporary form by wet or dry molding, sintering the resulting temporarily shaped product and pulverizing the sintered product, the improvement which comprises rapidly cooling the sintered shaped product to thereby pulverize it and obtain the ferroelectric ceramic microcapsules which comprise virtually single domain microcrystals.
- 11. The method of claim 10, wherein said rapidly cooling is at a temperature of about 10.degree. C./minute or more.
- 12. In a method for preparing ferroelectric ceramic microcrystals which comprises heating appropriate mixed starting powders which correspond to the ferroelectric ceramic microcrystals to cause the starting powders to undergo a solid phase reaction, further rapidly cooling the resulting reaction product to pulverize it, temporarily shaping the pulverized product into a temporary form by a conventional wet or dry molding, sintering the resulting temporarily shaped product and pulverizing the sintered product, the improvement which comprises rapidly cooling the sintered shaped product to thereby pulverize it and obtain the ferroelectric ceramic microcapsules which comprise virtually single domain microcrystals.
- 13. The method of claim 12, wherein said rapidly cooling is at a temperature of about 10.degree. C./minute or more.
- 14. In a method for preparing ferroelectric ceramic microcrystals which comprises temporarily molding appropriate mixed starting powders which correspond to the ferroelectric ceramic microcrystals and heating the temporary molding to cause the temporary molding to undergo a solid phase reaction, pulverizing the resulting reaction product, temporarily shaping the resulting pulverized product, sintering the shaped product and pulverizing the resulting sintered product, the improvement which comprises rapidly cooling the resulting sintered product to thereby pulverize it and obtain the ferroelectric ceramic microcapsules which comprise virtually single domain microcrystals.
- 15. The method of claim 14, wherein said rapidly cooling is at a temperature of about 10.degree. C./minute or more.
- 16. In a method for preparing ferroelectric ceramic microcrystals which comprises heating appropriate mixed starting powders which correspond to the ferroelectric ceramic microcrystals to cause the mixed starting powders to undergo a solid phase reaction, temporarily shaping the solid phase reaction product, sintering the temporarily shaped solid phase reaction product and pulverizing the temporarily shaped sintered reaction product, the improvement which comprises rapidly cooling the sintered temporarily shaped reaction product to thereby pulverize it and obtain the ferroelectric ceramic microcrystals which comprise virtually single domain microcrystals.
- 17. The method of claim 16, wherein said rapidly cooling is at a temperature of about 10.degree. C./minute or more.
- 18. In a method for preparing ferroelectric ceramic microcrystals which comprises thermally decomposing a coprecipitate of appropriate mixed starting salts which correspond to the ferroelectric ceramic microcrystals, the improvement which comprises rapidly cooling the thermally decomposed product to thereby pulverize it and obtain the ferroelectric ceramic microcapsules which comprise virtually single domain microcrystals.
- 19. A method for preparing ferroelectric ceramic microcrystals which comprises repeating the treatment of claim 1, 4, 6, 8, 10, 12, 14, 16 or 18 two times or more.
- 20. A method for preparing ferroelectric ceramic microcrystals of claim 4, 6, 8, 10, 12, 14, 16, or 18 wherein said appropriate mixed starting powders or salts are mixed in a proportion which corresponds to the composition of the desired ferroelectric ceramic microcrystals.
- 21. A method for preparing ferroelectric ceramic microcrystals of claim 4, 6, 8, 10, 12, 14, 16 or 18 wherein said mixed starting powders or salts are mixed in a proportion which corresponds to the composition of the desired ferroelectric ceramic microcrystals, and at least one excess lead oxide or at least one excess lead salt are added in the case of using a member selected from the group consisting of individual ferroelectric ceramics containing lead selected from the group consisting of
- Perovskite structures selected from (1) to (4):
- (1) lead-containing barium titanate solid solutions containing as the main component barium titanate;
- (2) lead titanate and solid solutions containing as the main component lead titanate;
- (3) lead titanate zirconate and solid solutions containing this salt as the main component; and
- (4) three-component ceramics consisting of solid solutions containing lead titanate zirconate and as a third component a salt of lead oxide and other metal oxides belonging to one of the following groups (a) to (f):
- (a) oxides represented by the formula:
- A.sup.2+ (B.sub.1/3.sup.2+.B.sub.2/3.sup.5+)O.sub.3
- where A.sup.2+ is Pb, Sr or Ba; B.sup.2+ is Zn, Cd, Mg, Ni or Co and B.sup.5+ is Nb or Ta;
- (b) oxides represented by the formula:
- A.sup.2+ (B.sub.1/2.sup.2+.B.sub.1/2.sup.6+)O.sub.3
- where A.sup.2+ is Pb; B.sup.2+ is Cd, Mn, Zn, Mg, Co or Ni and B.sup.6+ is W or Te;
- (c) oxides represented by the formula:
- A.sup.2+ (B.sub.1/2.sup.3+.B.sub.1/2.sup.5+)O.sub.3
- where A.sup.2+ is Pb, Ba or Ca; B.sup.3+ is Fe, Sc, Cr, Yb, Lu or In and B.sup.5+ is Nb or Ta;
- (d) oxides represented by the formula:
- A.sup.2+ (B.sub.2/3.sup.3+.B.sub.1/3.sup.6+)O.sub.3
- where A.sup.2+ is Pb; B.sup.3+ is Fe and B.sup.6+ is W;
- (e) oxides represented by the formula:
- A.sup.3+ (B.sub.1/2.sup.2+.B.sub.1/2.sup.4+)O.sub.3
- where A.sup.3+ is La or Nd; B.sup.2+ is Mg and B.sup.4+ is Ti;
- (f) oxides represented by the formula:
- (A.sub.1/2.sup.1+.A.sub.1/2.sup.3+)BO.sub.3
- where A.sup.1+ is Na or K; A.sup.3+ is La, Ce, Nd or Bi and B is Ti;
- tungsten bronze structures;
- bismuth layer structures;
- ceramics which contain as a basic composition the above ferroelectric ceramics, wherein a part of the Pb is replaced by an alkaline earth metal(s); and
- ceramics which contain as a basic composition the above individual ferroelectric ceramics and further contain, as a supplemental component, one or more oxides selected from the following group I, II, or III for the purpose of modification:
- I. Nb.sub.2 O.sub.5, Ta.sub.2 O.sub.5, La.sub.2 O.sub.3, Sb.sub.2 O.sub.5, Sb.sub.2 O.sub.3, Bi.sub.2 O.sub.3 and WO.sub.3 ;
- II. MgO, Fe.sub.2 O.sub.3, Sc.sub.2 O.sub.3 and K.sub.2 O; and
- III. Cr.sub.2 O.sub.3, U.sub.2 O.sub.3 and MnO.sub.2.
- 22. A method for preparing ferroelectric ceramic microcrystals of claim 1, 4, 6, 8, 10, 12, 14, 16, or 18 wherein said ferroelectric ceramic microcrystals contain as a basic composition a member selected from the group consisting of the following individual ferroelectric ceramics:
- Perovskite structures selected from (1) to (5):
- (1) barium titanate and solid solutions containing as the main component barium titanate;
- (2) lead titanate and solid solutions containing as the main component lead titanate;
- (3) lead titanate zirconate and solid solutions containing this salt as the main component; and
- (4) three-component ceramics consisting of solid solutions containing lead titanate zirconate and as a third component a salt of lead oxide and other metal oxides belonging to one of the following groups (a) to (f):
- (a) oxides represented by the formula:
- A.sup.2+ (B.sub.1/3.sup.2+.B.sub.2/3.sup.5+)O.sub.3
- where A.sup.2+ is Pb, Sr or Ba; B.sup.2+ is Zn, Cd, Mg, Ni or Co and B.sup.5+ is Nb or Ta;
- (b) oxides represented by the formula:
- A.sup.2+ (B.sub.1/2.sup.2+.B.sub.1/2.sup.6+)O.sub.3
- where A.sup.2+ is Pb; B.sup.2+ is Cd, Mn, Zn, Co or Ni and B.sup.6+ is W or Te;
- (c) oxides represented by the formula:
- A.sup.2+ (B.sub.1/2.sup.3+.B.sub.1/2.sup.5+)O.sub.3
- where A.sup.2+ is Pb; Ba or Ca; B.sup.3+ is Fe, Sc, Cr, Yb, Lu or In and B.sup.5+ is Nb or Ta;
- (d) oxides represented by the formula:
- A.sup.2+ (B.sub.2/3.sup.3+.B.sub.1/3.sup.6+)O.sub.3
- where A.sup.2+ is Pb; B.sup.3+ is Fe and B.sup.6+ is W;
- (e) oxides represented by the formula:
- A.sup.3+ (B.sub.1/2.sup.2+.B.sub.1/2.sup.4+)O.sub.3
- where A.sup.3+ is La or Nd; B.sup.2+ is Mg and B.sup.4+ is Ti;
- (f) oxides represented by the formula:
- (A.sub.1/2.sup.1+.A.sub.1/2.sup.3+)BO.sub.3
- where A.sup.1+ is Na or K; A.sup.3+ is La, Ce, Nd or Bi and B is Ti; and
- (5) solid solutions containing NaNbO.sub.3 ;
- II. tungsten bronze structures;
- III. bismuth layer structures;
- IV. LiNbO.sub.3, LiTaO.sub.3 ;
- ceramics which contain as a basic composition the above ferroelectric ceramics, wherein a part of the Pb is replaced by an alkaline earth metal(s);
- ceramics which contain as a basic composition the above ferroelectric ceramics and further contain, as a supplemental component, one or more oxides selected from the following group I, II, or III for the purpose of modification:
- I. Nb.sub.2 O.sub.5, Ta.sub.2 O.sub.5, La.sub.2 O.sub.3, Sb.sub.2 O.sub.5, Sb.sub.2 O.sub.3, Bi.sub.2 O.sub.3 and Wo.sub.3 ;
- II. MgO, Fe.sub.2 O.sub.3, Sc.sub.2 O.sub.3 and K.sub.2 O; and
- III. Cr.sub.2 O.sub.3, U.sub.2 O.sub.3 and MnO.sub.2 ; and
- ceramics which contain as a basic composition the above ferroelectric ceramics, wherein the Pb component is present in excess of the stoichiometric amount.
- 23. A method for preparing ferroelectric ceramic microcrystals of claims 4, 6, 8, 10, 12, 14, 16, or 18 wherein the purity of said starting powders or salts is about 98% or more.
- 24. A method for preparing ferroelectric ceramic microcrystals of claims 1, 4, 6, 8, 10, 12, 14, 16 or 18 wherein said rapid cooling is at about 10.degree. C./minute or more.
- 25. A method for preparing ferroelectric ceramic microcrystals of claims 1, 4, 6, 8, 10, 12, 14, 16, or 18 wherein said product is further subjected to an etching.
- 26. A method for preparing ferroelectric ceramic microcrystals of claim 25 wherein etching is carried out utilizing an acid or alkali solution, the pH of the acid solution being about 3 or less and the pH of the alkali solution being about 13 or more, or using hydrogen peroxide.
- 27. A method for preparing ferroelectric ceramic microcrystals of claims 1, 4, 6, 8, 10, 12, 14, 16, or 18 wherein said ferroelectric ceramic powder contains 90% or more of grains in a particle size range of about 1 to 400.mu. and wherein the proportion of fine powder having a diameter of 0.2.mu. or less is about 3% or less.
- 28. A method for preparing ferroelectric ceramic microcrystals of claim 26, wherein said ferroelectric ceramic powder contains 90% or more of grains in a particle size range of about 1 to 400.mu. and wherein the proportion of fine powder having a diameter of 0.2.mu. or less is about 3% or less.
- 29. A method for preparing ferroelectric ceramic microcrystals of claim 26, wherein said mixed starting powders of salts are mixed in a proportion which corresponds to the composition of the desired ferroelectric ceramic powder or salt, and at least one excess lead oxide or at least one excess lead salt are added in the case of using a member selected from the group consisting of individual ferroelectric ceramics containing lead selected from the group consisting of
- Perovskite structures selected from (1) to (4):
- (1) lead-containing barium titanate solid solutions containing as the main component barium titanate;
- (2) lead titanate and solid solutions containing as the main component lead titanate;
- (3) lead titanate zirconate and solid solutions containing this salt as the main component; and
- (4) three-component ceramics consisting of solid solutions containing lead titanate zirconate and as a third component a salt of lead oxide and other metal oxides belonging to one of the following groups (a) to (f):
- (a) oxides represented by the formula:
- A.sup.2+ (B.sub.1/3.sup.2+.B.sub.2/3.sup.5+)O.sub.3
- where A.sup.2+ is Pb, Sr or Ba; B.sup.2+ is Zn, Cd, Mg, Ni or Co and B.sup.5+ is Nb or Ta;
- (b) oxides represented by the formula:
- A.sup.2+ (B.sub.1/2.sup.2+.B.sub.1/2.sup.6+)O.sub.3
- where A.sup.2+ is Pb; B.sup.2+ is Cd, Mn, Zn, Mg, Co or Ni and B.sup.6+ is W or Te;
- (c) oxides represented by the formula:
- A.sup.2+ (B.sub.1/2.sup.3+.B.sub.1/2.sup.5+)O.sub.3
- where A.sup.2+ is Pb, Ba or Ca; B.sup.3+ is Fe, Sc, Cr, Yb, Lu or In and B.sup.5+ is Nb or Ta;
- (d) oxides represented by the formula:
- A.sup.2+ (B.sub.2/3.sup.3+.B.sub.1/3.sup.6+)O.sub.3
- where A.sup.2+ is Pb; B.sup.3+ is Fe and B.sup.6+ is W;
- (e) oxides represented by the formula:
- A.sup.3+ (B.sub.1/2.sup.2+.B.sub.1/2.sup.4+)O.sub.3
- where A.sup.3+ is La or Nd; B.sup.2+ is Mg and B.sup.4+ is Ti;
- (f) oxides represented by the formula:
- (A.sub.1/2.sup.1+.A.sub.1/2.sup.3+)BO.sub.3
- where A.sup.1+ is Na or K; A.sup.3+ is La, Ce, Nd or Bi and B is Ti;
- tungsten bronze structures;
- bismuth layer structures;
- ceramics which contain as a basic composition the above individual ferroelectric ceramics, wherein a part of the Pb is replaced by an alkaline earth metal(s); and
- ceramics which contain as a basic composition the above ferroelectric ceramics and further contain, as a supplemental component, one or more oxides selected from the following group I, II, or III for the purpose of modification:
- I. Nb.sub.2 O.sub.5, Ta.sub.2 O.sub.5, La.sub.2 O.sub.3, Sb.sub.2 O.sub.5, Sb.sub.2 O.sub.3, Bi.sub.2 O.sub.3 and Wo.sub.3 ;
- II. MgO, Fe.sub.2 O.sub.3, Sc.sub.2 O.sub.3 and K.sub.2 O; and
- III. Cr.sub.2 O.sub.3, U.sub.2 O.sub.3 and MnO.sub.2.
- 30. A method for preparing ferroelectric ceramic microcrystals of claim 27, wherein said ferroelectric ceramic microcrystals contain as a basic composition a member selected from the group consisting of the following individual ferroelectric ceramics:
- Perovskite structures selected from (1) to (5):
- (1) barium titanate and solid solutions containing as the main component barium titanate;
- (2) lead titanate and solid solutions containing as the main component lead titanate;
- (3) lead titanate zirconate and solid solutions containing this salt as the main component; and
- (4) three-component ceramics consisting of solid solutions containing lead titanate zirconate and as a third component a salt of lead oxide and other metal oxides belonging to one of the following groups (a) to (f):
- (a) oxides represented by the formula:
- A.sup.2+ (B.sub.1/3.sup.2+.B.sub.2/3.sup.5+)O.sub.3
- where A.sup.2+ is Pb, Sr or Ba; B.sup.2+ is Zn, Cd, Mg, Ni or Co and B.sup.5+ is Nb or Ta;
- (b) oxides represented by the formula:
- A.sup.2+ (B.sub.1/2.sup.2+.B.sub.1/2.sup.6+)O.sub.3
- where A.sup.2+ is Pb; B.sup.2+ is Cd, Mn, Zn, Mg, Co or Ni and B.sup.6+ is W or Te;
- (c) oxides represented by the formula:
- A.sup.2+ (B.sub.1/2.sup.3+.B.sub.1/2.sup.5+)O.sub.3
- where A.sup.2+ is Pb, Ba or Ca; B.sup.3+ is Fe, Sc, Cr, Yb, Lu or In and B.sup.5+ is Nb or Ta;
- (d) oxides represented by the formula:
- A.sup.2+ (B.sub.2/3.sup.3+.B.sub.1/3.sup.6+)O.sub.3
- where A.sup.2+ is Pb; B.sup.3+ is Fe and B.sup.6+ is W;
- (e) oxides represented by the formula:
- A.sup.3+ (B.sub.1/2.sup.2+.B.sub.1/2.sup.4+)O.sub.3
- where A.sup.3+ is La or Nd; B.sup.2+ is Mg and B.sup.4+ is Ti;
- (f) oxides represented by the formula:
- (A.sub.1/2.sup.1+.A.sub.1/2.sup.3+)BO.sub.3
- where A.sup.1+ is Na or K; A.sup.3+ is La, Ce, Nd or Bi and B is Ti; and
- (5) solid solutions containing NaNbO.sub.3 ;
- II. tungsten bronze structures;
- III. bismuth layer structures;
- IV. LiNbO.sub.3, LiTaO.sub.3 ;
- ceramics which contain as a basic composition the above ferroelectric ceramics, wherein a part of the Pb is replaced by an alkaline earth metal(s);
- ceramics which contain as a basic composition the above ferroelectric ceramics and further contain, as a supplemental component, one or more oxides selected from the following group I, II, or III for the purpose of modification:
- I. Nb.sub.2 O.sub.5, Ta.sub.2 O.sub.5, La.sub.2 O.sub.3, Sb.sub.2 O.sub.5, Sb.sub.2 O.sub.3, Bi.sub.2 O.sub.3 and Wo.sub.3 ;
- II. MgO, Fe.sub.2 O.sub.3, Sc.sub.2 O.sub.3 and K.sub.2 O; and
- III. Cr.sub.2 O.sub.3, U.sub.2 O.sub.3 and MnO.sub.2 ; and
- ceramics which contain as a basic composition the above ferroelectric ceramics, wherein the Pb component is present in excess of the stoichiometric amount.
- 31. The method of claim 18, wherein said rapidly cooling is at a temperature of about 10.degree. C./minute or more.
Priority Claims (1)
Number |
Date |
Country |
Kind |
53-64890 |
Jun 1978 |
JPX |
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Parent Case Info
This is a divisional of application Ser. No. 07/264,000 filed Oct. 25, 1988, now U.S. Pat. No. 4,917,810; which is a continuation of application Ser. No. 06/827,028 filed Feb. 5, 1986, now abandoned which is a continuation of application Ser. No. 06/529,631 filed Aug. 29, 1983, now abandoned which is a continuation of application Ser. No. 06/295,208 filed Aug. 24, 1981, now abandoned which is a continuation of application Ser. No. 06/044,741 filed Jun. 1, 1979 now abandoned.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
4917810 |
Tsunooka et al. |
Apr 1990 |
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Divisions (1)
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Number |
Date |
Country |
Parent |
264000 |
Oct 1988 |
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Continuations (4)
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Number |
Date |
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Parent |
827028 |
Feb 1986 |
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Parent |
529631 |
Aug 1983 |
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Parent |
295208 |
Aug 1981 |
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Parent |
44741 |
Jun 1979 |
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