首页 | 官方网站   微博 | 高级检索  
文章检索
  按 检索   检索词:      
出版年份:   被引次数:   他引次数: 提示:输入*表示无穷大
  收费全文   225214篇
  免费   22077篇
  国内免费   11812篇
工业技术   259103篇
  2024年   498篇
  2023年   4012篇
  2022年   7074篇
  2021年   10532篇
  2020年   8010篇
  2019年   6306篇
  2018年   7102篇
  2017年   7922篇
  2016年   7181篇
  2015年   9943篇
  2014年   12388篇
  2013年   14815篇
  2012年   16629篇
  2011年   17300篇
  2010年   15086篇
  2009年   14236篇
  2008年   13572篇
  2007年   12629篇
  2006年   12415篇
  2005年   10405篇
  2004年   7041篇
  2003年   5701篇
  2002年   5183篇
  2001年   4524篇
  2000年   4158篇
  1999年   4533篇
  1998年   3678篇
  1997年   3084篇
  1996年   2864篇
  1995年   2379篇
  1994年   1891篇
  1993年   1351篇
  1992年   1107篇
  1991年   813篇
  1990年   600篇
  1989年   486篇
  1988年   378篇
  1987年   246篇
  1986年   209篇
  1985年   132篇
  1984年   121篇
  1983年   82篇
  1982年   89篇
  1981年   72篇
  1980年   77篇
  1979年   41篇
  1978年   32篇
  1977年   33篇
  1976年   44篇
  1975年   20篇
排序方式: 共有10000条查询结果,搜索用时 62 毫秒
51.
52.
Corrosion and wear failures are bottlenecks for restricting applications and developments of Al-based functional materials. As a new lubrication technology, superhydrophobic preparation provides an effective way to settle Al alloy corrosion. The preparation methods of superhydrophobic Al alloys are mainly multistep strategies. In this study, superhydrophobic Al alloy, has been prepared by an efficient one-step electrochemical etching process. Meanwhile, its micromorphology has been observed by a scanning electron microscope. The wettability has been measured by video optical contact angle meter. The corrosion behavior has been tested by electrochemical workstation, and wear performance has been characterized by friction tester. The results show that the micro-nanoterraced concave–convex structure has been fabricated and an as-prepared surface exhibits excellent superhydrophobic behavior. Further electrochemical and tribological tests show that corrosion resistance and wear resistance have also been significantly improved. This study provides a new method to prepare wear-resistant and corrosion-resistant Al alloy for widening applications of multifunctional Al-based engineering materials.  相似文献   
53.
以黏胶短纤维和再生植物纤维为主要原料,采用短纤维干法成网-针刺加固工艺,在针刺密度为60~160针/cm2、针刺深度为3.5~ 12.0 mm、针刺频率为720~ 940次/min的条件下,制备单位面积质量在196~979g/m2、厚度在3.6~ 14.4 mm、再生植物纤维质量分数在39.6% ~ 70.9%的针刺复合生态土工布,用于植生护坡.性能测试和植物种植试验结果表明:针刺复合生态土工布具有较好的力学性能和吸水保水性能,且对植物的生长具有良好的促进作用;随着针刺复合生态土工布单位面积质量的增加,其力学性能增加,吸水保水性能变好,发芽率、植株高度和植株质量也均呈现出增加的趋势.  相似文献   
54.
赵博 《聚酯工业》2021,34(2):10-12
针对纺织工程中外合作办学模式下的《纺纱综合实验》课程现状和存在的问题,原有的课程体系已经不能适应其教学模式的要求,根据中外合作办学的特点和要求,从《纺纱综合实验》课程教学的内容、教学方法、教学手段和考核方法等方面进行了教学改革实践和探索,以提高学生学习的积极性和主动性,形成师生间良好的教学循环,全面提高教学质量和效果.  相似文献   
55.
三聚硫氰酸单钠盐是一种新型的多官能团化精细化学品。介绍了三聚硫氰酸单钠盐的制备方法,以及其在橡胶硫化、橡胶与金属的硫化粘合等领域的应用研究进展。  相似文献   
56.
Flexible scintillating fiber plays an important role in X-ray radiation monitoring and high-resolution medical imaging, while construction of scintillating fiber derived from the commercial material system meet with limited success. Here, we report the design and successful fabrication of the Ce-activated lutetium aluminum silicate glass, nanostructured glass, and fiber, and explore their scintillating properties. The scintillating glass with optimized composition and optical properties is determined. The crystallization behavior of lutetium aluminum silicate glass is studied and the nanostructured glass embedded with orthorhombic Lu2Si2O7 phase is successfully constructed for the first time. Importantly, the crystalline layer thickness of the nanostructured glass can be finely tuned and ~172.89% enhancement in the scintillating performance can be achieved. Furthermore, the fiber with large sized core is fabricated and its radiation response properties are tested. The results show that it exhibits high sensitivity and its scintillating emission is lineally dependent on the X-ray power, indicating the potential application for radiation detection.  相似文献   
57.
Due to the demand of miniaturization and integration for ceramic capacitors in electronic components market, TiO2-based ceramics with colossal permittivity has become a research hotspot in recent years. In this work, we report that Ag+/Nb5+ co-doped (Ag1/4Nb3/4)xTi1−xO2 (ANTOx) ceramics with colossal permittivity over a wide frequency and temperature range were successfully prepared by a traditional solid–state method. Notably, compositions of ANTO0.005 and ANTO0.01 respectively exhibit both low dielectric loss (0.040 and 0.050 at 1 kHz), high dielectric permittivity (9.2 × 103 and 1.6 × 104 at 1 kHz), and good thermal stability, which satisfy the requirements for the temperature range of application of X9R and X8R ceramic capacitors, respectively. The origin of the dielectric behavior was attributed to five dielectric relaxation phenomena, i.e., localized carriers' hopping, electron–pinned defect–dipoles, interfacial polarization, and oxygen vacancies ionization and diffusion, as suggested by dielectric temperature spectra and valence state analysis via XPS; wherein, electron-pinned defect–dipoles and internal barrier layer capacitance are believed to be the main causes for the giant dielectric permittivity in ANTOx ceramics.  相似文献   
58.
Halide perovskite glass-ceramic has recently moved into the center of the attention of perovskite research due to their potential for temperature sensing. However, quantum dots glass-ceramic with excellent luminescence performance still needs to be combined with rare-earth (RE) ions to accurately measure temperature. In this work, a novel non-RE doped dual-emission (460 nm and 512 nm) CsPbBr3 quantum dots was obtained in telluride glass via the friction crystallization method, where 512 nm was derived from intrinsic luminescence of quantum dots, and 460 nm was originated from thermally induced bromine vacancy, which can be used for temperature sensing. Fluorescence intensity ratio results indicate that the relative sensitivity of dual-emission could reach 5.6 % K?1 at 323 K. The discovery of non-RE doped CsPbBr3 QDs glass-ceramic with negative thermal quenching uncovers a new optional sensing glass material that surpass traditional RE-doped QDs glass by their tunability and sensitivity.  相似文献   
59.
60.
Ge2Sb2Tes is the most widely utilized chalcogenide phase-change material for non-volatile photonic applications,which undergoes amorphous-cubic and cubic-hexagonal phase transition under external excitations.However,the cubic-hexagonal optical contrast is negligible,only the amorphous-cubic phase transition of Ge2Sb2Te5 is available.This limits the optical switching states of traditional active dis-plays and absorbers to two.We find that increasing structural disorder difference of cubic-hexagonal can increase optical contrast close to the level of amorphous-cubic.Therefore,an amorphous-cubic-hexagonal phase transition with high optical contrast is realized.Using this phase transition,we have developed display and absorber with three distinct switching states,improving the switching perfor-mance by 50%.Through the combination of first-principle calculations and experiments,we reveal that the key to increasing structural disorder difference of amorphous,cubic and hexagonal phases is to intro-duce small interstitial impurities(like N)in Ge2Sb2Tes,rather than large substitutional impurities(like Ag)previously thought.This is explained by the formation energy and lattice distortion.Based on the impurity atomic radius,interstitial site radius and formation energy,C and B are also potential suit-able impurities.In addition,introducing interstitial impurities into phase-change materials with van der Waals gaps in stable phase such as GeSb4Te7,GeSb2Te4,Ge3Sb2Te6,Sb2Te3 will produce high optical con-trast amorphous-metastable-stable phase transition.This research not only reveals the important role of interstitial impurities in increasing the optical contrast between metastable-stable phases,but also proposes varieties of candidate matrices and impurities.This provides new phase-change materials and design methods for non-volatile optical devices with multi-switching states.  相似文献   
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司    京ICP备09084417号-23

京公网安备 11010802026262号