CN103680986A - 有机导电材料固体电容器 - Google Patents

有机导电材料固体电容器 Download PDF

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CN103680986A
CN103680986A CN201210339657.1A CN201210339657A CN103680986A CN 103680986 A CN103680986 A CN 103680986A CN 201210339657 A CN201210339657 A CN 201210339657A CN 103680986 A CN103680986 A CN 103680986A
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substrate
parts
solid capacitor
thin slice
ethyoxyl
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倪彩霞
倪强
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SHANGHAI QIANGXING COMMUNICATION GROUP Co Ltd
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SHANGHAI QIANGXING COMMUNICATION GROUP Co Ltd
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Abstract

本发明公开的一种有机导电材料固体电容器,它包括基片和薄片,所述薄片安装在基片上,其基片由以下重量份原料经混合压延制成:树脂:100份,抗静电增塑剂5-6份,光敏化促进剂5-6份,氧化锌:10-12份,阻燃剂:6-7份,硬脂酸钡:6-7份,石蜡:6-7份,导电屏蔽功能材料:30-40份。本发明主要解决现有的固体电容器由于采用金属基片,使得产品成本高,质量大的技术问题,使加工复杂度也大大降低。

Description

有机导电材料固体电容器
技术领域
本发明涉及固体电容器,特别是一种有机导电材料固体电容器。 
背景技术
中国发明专利说明书(授权公告号:CN1085345A)公开了同时制造多个固体电容器的方法,包括下列工艺步骤:提供一金属基片;将固体电容器形成金属粉末制成的薄片安装到所述基片上,是薄片的下表面与所述基片的上表面平行并有一定间隙;烧结所述的薄片和基片使薄片的下表面与所述基片的上表面连接在一起,并使所述薄片的粉末变成整块多孔体;通过在垂直于基片的平面上形成第一组切口,将所述薄片分割成许多分立单元;使所述薄片经过阳极氧化在整个多孔体上形成介质覆盖层;在所述介质覆盖层上形成导电的对电极覆盖层,所述对电极覆盖层覆盖在所述上表面上;形成一平行于所述基片的金属构件,使其与所述覆盖上表面的所述对电极覆盖层进行电气和机械连接;在所述基片于构件之间注入绝缘材料,将由第一组切口形成的所述薄片的分立单元之间的空隙基本上填满;形成一第一组切口平行、并与之对准的第二组切槽,穿透所述金属构件、绝缘材料和基片。由于金属基片的制作工艺复杂而且成本高,质量大,进而使得产品的成本也很高。 
发明内容
本发明的目的是提供一种有机导电材料固体电容器,主要解决现有的固体电容器由于采用金属基片,使得产品成本高,质量大,加工复杂的技术问题。 
为解决上述的技术问题,本发明是这样实现的: 
一种有机导电材料固体电容器,它包括基片和薄片,所述薄片安装在基片上,其特征在于:该基片由以下重量份原料经混合压延制成: 
树脂:100份,抗静电增塑剂5-6份,光敏化促进剂5-6份,氧化锌:10-12份,阻燃剂:6-7份,硬脂酸钡:6-7份,石蜡:6-7份,导电屏蔽功能材料:30-40 份; 
所述树脂为丙烯腈-丁二烯-苯乙烯共聚物或聚乙烯或聚丙烯或HP-PVC;所述抗静电增塑剂为邻苯二甲酸二辛脂或邻苯二甲酸二丁酯;所述光敏化促进剂为N-(乙氧基羟基苯基)-N’-甲基-N’-苯基甲醚或N-(乙氧基羟基苯基)-N’乙基-N’-苯基甲醚;所述阻燃剂为十溴二苯醚;所述导电屏蔽功能材料包括乙炔碳黑、聚碳酸酯废料真空热处理变性碳黑、茂金属催化处理高分子材料和有机碳催化处理后再纳米化形成超细颗粒粉剂。 
本发明的优点如下: 
本发明以有机导电材料替换了金属材料制作基片,使得产品的成本降低,而且产品的质量也减小,加工的复杂程度也一并降低。 
附图说明
图1为本发明的结构示意图。 
具体实施方式
以下结合具体实施方式来进一步描述本发明。 
参见图1,图中给出的一种有机导电材料固体电容器,它包括基片1和薄片2,薄片2安装在基片1上,本发明的特点在于该基片由以下重量份原料经混合压延制成: 
树脂:100份,抗静电增塑剂5-6份,光敏化促进剂5-6份,氧化锌:10-12份,阻燃剂:6-7份,硬脂酸钡:6-7份,石蜡:6-7份,导电屏蔽功能材料:30-40份; 
所述树脂为丙烯腈-丁二烯-苯乙烯共聚物或聚乙烯或聚丙烯或HP-PVC;所述抗静电增塑剂为邻苯二甲酸二辛脂或邻苯二甲酸二丁酯;所述光敏化促进剂为N-(乙氧基羟基苯基)-N’-甲基-N’-苯基甲醚或N-(乙氧基羟基苯基)-N’乙基-N’-苯基甲醚;所述阻燃剂为十溴二苯醚;所述导电屏蔽功能材料包括乙炔碳黑、聚碳酸酯废料真空热处理变性碳黑、茂金属催化处理高分子材料和有机碳催化处理后再纳米化形成超细颗粒粉剂。 
基片制备的具体实施例如下: 
实施例1 
基片由以下重量份原料经混合压延制成: 
丙烯腈-丁二烯-苯乙烯共聚物:                    100kg; 
邻苯二甲酸二辛脂                                5kg; 
N-(乙氧基羟基苯基)-N’-甲基-N’-苯基甲醚      5kg; 
氧化锌:                                        10kg; 
十溴二苯醚:                                    6kg; 
硬脂酸钡:                                      6kg; 
石蜡:                                          6kg; 
乙炔碳黑:                                      30kg。 
实施例2 
基片由以下重量份原料经混合压延制成: 
聚丙烯:                                        100kg; 
邻苯二甲酸二丁酯                                5.5kg; 
N-(乙氧基羟基苯基)-N’乙基-N’-苯基甲醚       5.5kg; 
氧化锌:                                        11kg; 
十溴二苯醚:                                    6.5kg; 
硬脂酸钡:                                      6.5kg; 
石蜡:                                          6.5kg; 
聚碳酸酯废料真空热处理变性碳黑:                35kg。 
实施例3 
基片由以下重量份原料经混合压延制成: 
聚乙烯:                                        100kg; 
邻苯二甲酸二丁酯                                6kg; 
N-(乙氧基羟基苯基)-N’乙基-N’-苯基甲醚       6kg; 
氧化锌:                                        12kg; 
十溴二苯醚:                                    7kg; 
硬脂酸钡:                7kg; 
石蜡:                    7kg; 
茂金属催化处理高分子材料和有机碳催化处理后再纳米化形成超细颗粒粉剂:                            38kg。 
实施例4 
基片由以下重量份原料经混合压延制成: 
HP-PVC:                                        100kg; 
邻苯二甲酸二辛脂                                5kg; 
N-(乙氧基羟基苯基)-N’-甲基-N’-苯基甲醚      5kg; 
氧化锌:                                        10kg; 
十溴二苯醚:                                    6kg; 
硬脂酸钡:                                      6kg; 
石蜡:                                          6kg; 
乙炔碳黑:                                      40kg。 
将检测,本发明上述各实施例制备的基片与金属片相比,电磁辐射屏蔽效率分别提高10%、12%、9%、11%、13%。 

Claims (1)

1.一种有机导电材料固体电容器,它包括基片和薄片,所述薄片安装在基片上,其特征在于:该基片由以下重量份原料经混合压延制成:
树脂:100份,抗静电增塑剂5-6份,光敏化促进剂5-6份,氧化锌:10-12份,阻燃剂:6-7份,硬脂酸钡:6-7份,石蜡:6-7份,导电屏蔽功能材料:30-40份;
所述树脂为丙烯腈-丁二烯-苯乙烯共聚物或聚乙烯或聚丙烯或HP-PVC;所述抗静电增塑剂为邻苯二甲酸二辛脂或邻苯二甲酸二丁酯;所述光敏化促进剂为N-(乙氧基羟基苯基)-N’-甲基-N’-苯基甲醚或N-(乙氧基羟基苯基)-N’乙基-N’-苯基甲醚;所述阻燃剂为十溴二苯醚;所述导电屏蔽功能材料包括乙炔碳黑、聚碳酸酯废料真空热处理变性碳黑、茂金属催化处理高分子材料和有机碳催化处理后再纳米化形成超细颗粒粉剂。
CN201210339657.1A 2012-09-14 2012-09-14 有机导电材料固体电容器 Pending CN103680986A (zh)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN115584111A (zh) * 2022-10-28 2023-01-10 中国科学院兰州化学物理研究所 一种抗静电自润滑塑料及其制备方法

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060205887A1 (en) * 2003-01-22 2006-09-14 Yoshiki Nakagawa Polymer and curable compositions improved in storage stability
CN1988079A (zh) * 2005-12-23 2007-06-27 上海翥星电子科技发展有限公司 有机导电材料固体电容器
CN101086904A (zh) * 2006-06-07 2007-12-12 上海翥星电子科技发展有限公司 有机屏蔽导电布料

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060205887A1 (en) * 2003-01-22 2006-09-14 Yoshiki Nakagawa Polymer and curable compositions improved in storage stability
CN1988079A (zh) * 2005-12-23 2007-06-27 上海翥星电子科技发展有限公司 有机导电材料固体电容器
CN101086904A (zh) * 2006-06-07 2007-12-12 上海翥星电子科技发展有限公司 有机屏蔽导电布料

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN115584111A (zh) * 2022-10-28 2023-01-10 中国科学院兰州化学物理研究所 一种抗静电自润滑塑料及其制备方法
CN115584111B (zh) * 2022-10-28 2023-11-14 中国科学院兰州化学物理研究所 一种抗静电自润滑塑料及其制备方法

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Application publication date: 20140326