Journal articles on the topic 'Goldnanopartikel'

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1

Schmid, Günter. "Ionisch vernetzte Goldcluster und Goldnanopartikel." Angewandte Chemie 120, no. 19 (April 28, 2008): 3548–50. http://dx.doi.org/10.1002/ange.200800506.

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2

Giljohann, David A, Dwight S Seferos, Weston L Daniel, Matthew D Massich, Pinal C Patel, and Chad A Mirkin. "Goldnanopartikel in Biologie und Medizin." Angewandte Chemie 122, no. 19 (April 16, 2010): 3352–66. http://dx.doi.org/10.1002/ange.200904359.

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3

Nuß, Stefan, Henrik Böttcher, Hellmuth Wurm, and Manfred L. Hallensleben. "Goldnanopartikel mit kovalent angebundenen Polymerketten." Angewandte Chemie 113, no. 21 (November 5, 2001): 4137–39. http://dx.doi.org/10.1002/1521-3757(20011105)113:21<4137::aid-ange4137>3.0.co;2-j.

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4

Mitschang, Fabian, Holger Schmalz, Seema Agarwal, and Andreas Greiner. "Goldnanopartikel-gefüllte Polymer-Nanoreaktoren für Teebeutel- ähnliche Katalysatoren." Angewandte Chemie 126, no. 19 (April 2, 2014): 5073–76. http://dx.doi.org/10.1002/ange.201402212.

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5

Bunz, Uwe H F., and Vincent M Rotello. "Goldnanopartikel-Fluorophor-Komplexe: empfindliche, selektive “Nasen” für die Biosensorik." Angewandte Chemie 122, no. 19 (April 1, 2010): 3338–50. http://dx.doi.org/10.1002/ange.200906928.

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6

Phillips, Ronnie L, Oscar R Miranda, Chang-Cheng You, Vincent M Rotello, and Uwe H F. Bunz. "Effiziente Erkennung von Bakterien mit Goldnanopartikel-Poly(para-phenylenethinylen)-Konstrukten." Angewandte Chemie 120, no. 14 (March 25, 2008): 2628–32. http://dx.doi.org/10.1002/ange.200703369.

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7

Evers, Mathies V., Miguel Bernal, Beatriz Roldan Cuenya, and Kristina Tschulik. "Partikel für Partikel – elektrochemische Einschlagsexperimente zur Synthese oberflächenimmobilisierter Goldnanopartikel für die Elektrokatalyse." Angewandte Chemie 131, no. 24 (May 15, 2019): 8305–9. http://dx.doi.org/10.1002/ange.201813993.

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8

Holz, Julia, Camilla Pfeffer, Hualiang Zuo, Dennis Beierlein, Gunther Richter, Elias Klemm, and René Peters. "In situ erzeugte Goldnanopartikel auf Aktivkohle als wiederverwendbare hocheffiziente Katalysatoren für eine C‐C‐Stille‐Kupplung." Angewandte Chemie 131, no. 30 (June 17, 2019): 10437–42. http://dx.doi.org/10.1002/ange.201902352.

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9

Wang, Ruiyao, Jun Yang, Zhiping Zheng, Michael D. Carducci, Jun Jiao, and Supapan Seraphin. "Keimbildung und Wachstum von Goldnanopartikeln, durch Dendrone gesteuert." Angewandte Chemie 113, no. 3 (February 2, 2001): 567–70. http://dx.doi.org/10.1002/1521-3757(20010202)113:3<567::aid-ange567>3.0.co;2-3.

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10

Köhler, M., J. Albert, G. Mayer, U. Hübner, and J. Wagner. "Bildung von Goldnanopartikeln und Nanopartikelaggregaten in statischen Mikromischern in Gegenwart von Rinderserumalbumin (BSA)." Chemie Ingenieur Technik 77, no. 7 (July 2005): 867–73. http://dx.doi.org/10.1002/cite.200500065.

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11

Gao, JunFang. "SU-GG-J-182: The Secondary Electron Distribution of Goldnanoparticle in Proton Therapy." Medical Physics 35, no. 6Part8 (June 2008): 2721. http://dx.doi.org/10.1118/1.2961731.

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12

Choi, Young-Bong, Hee Gon Kim, Gui Hwan Han, Hyug-Han Kim, and Si Wouk Kim. "Voltammetric detection of trimethylamine using immobilized trimethylamine dehydrogenase on an electrodeposited goldnanoparticle electrode." Biotechnology and Bioprocess Engineering 16, no. 4 (August 2011): 631–37. http://dx.doi.org/10.1007/s12257-011-0070-2.

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13

Hou, Shao-Yi, Hsi-Kuei Chen, Hsu-Chieh Cheng, and Chun-Yen Huang. "Development of Zeptomole and Attomolar Detection Sensitivity of Biotin−Peptide Using a Dot−Blot GoldNanoparticle Immunoassay." Analytical Chemistry 79, no. 3 (February 2007): 980–85. http://dx.doi.org/10.1021/ac061507g.

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14

Çelik, Filiz, Hakan Çiftçi, and Uğur Tamer. "A Glucose Selective Non-enzymatic Potentiometric Chitosan-Goldnanoparticle Nanocomposite Sensor Based on Boronic Acid-Diol Recognition." Electroanalysis 30, no. 11 (September 20, 2018): 2696–703. http://dx.doi.org/10.1002/elan.201800372.

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15

Sun, Ningwei, Shi‐Tong Zhang, Frank Simon, Anja Maria Steiner, Jonas Schubert, Yixuan Du, Zhi Qiao, Andreas Fery, and Franziska Lissel. "Mit N‐heterocyclischen Carbenen funktionalisierte Poly(3‐hexylthiophene) als robuste und leitfähige Liganden zur Stabilisierung von Goldnanopartikeln." Angewandte Chemie, December 29, 2020. http://dx.doi.org/10.1002/ange.202012216.

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16

Goshwami, Versha, Ranjan Srivastava, Narendra Singh Bhandari Singh Bhandari, Avikal Kumar, Samarth Tewari, and Saurabh Gangola. "DYNAMIC INTERVENTIONS OF GROWTH REGULATION IN CALENDULA (CALENDULA OFFICINALIS L.) AS INFLUENCED BY GOLD-NANOPARTICLE." PLANT ARCHIVES 21, supplement 1 (December 31, 2020). http://dx.doi.org/10.51470/plantarchives.2021.v21.s1.423.

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Abstract:
Nanotechnology is the art and science of manipulating material at atomic scale. It can also be defined as the designing, characterization, production and application of structures, devices and systems by controlling shape and size at the nanoscale. The present investigation was carried out to assess the effect of Gold-nanoparticle treatment on vegetative and flowering attributes of Calendula. Experiment consisted of four treatments (5, 10, 15, 20 ppm Goldnanoparticle), along with control and was laid out in Randomized block design. Among the various treatments, application of 10 ppm of Gold-nanoparticle (T2 ) was found best for most of the parameters viz., plant height (73.95 cm), plant spread (54.62 cm), number of branches (25.15), number of leaves (127.55), number of flower (131.30), flower diameter (7.06 cm), flower weight (4.31), minimum days to flower bud initiation (30.85 days) and Flowering duration (105.15 days over the rest treatments. Treatment T4 (20 ppm Gold-nanoparticle) showed poor growth in most of the recorded parameters due to the toxicity of Gold-nanoparticle at higher concentration. Nanoparticles when applied to the plants can help them to cope up the adverse condition by releasing the ROS enzyme (Reverse Oxygen Species). During stress conditions ROS enzyme releases and antioxidant defense system of plant gets activated to maintain the normal equilibrium. As a result additional amount of proteins, carbohydrates and DNAs are formed. These additional molecules enhance plant growth and improve yield.

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