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Baorong Hou - One of the best experts on this subject based on the ideXlab platform.

  • controllable Dianthus caryophyllus like superhydrophilic superhydrophobic hierarchical structure based on self congregated nanowires for corrosion inhibition and biofouling mitigation
    Chemical Engineering Journal, 2017
    Co-Authors: Binbin Zhang, Xiuhua Hu, Qingjun Zhu, Xiutong Wang, Xia Zhao, Congtao Sun, Yantao Li, Baorong Hou
    Abstract:

    Abstract Here we present our findings of superhydrophilic (SHPL)/superhydrophobic (SHPB) Dianthus caryophyllus -like hierarchical structure for corrosion inhibition and biofouling mitigation through a relatively high-speed hard anodisation (HA) technique. The surface morphologies, chemical compositions were characterized by scanning electron microscopy (SEM), X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectrophotometer (FTIR). The static and dynamic behaviors of water droplets and water stream demonstrate the extremely low contact angle of SHPL surface and the low adhesive force of SHPB surface. Electrochemical impedance spectra (EIS) in 3.5 wt% NaCl solution and settlement experiments in Chlorella vulgaris -inoculated culture medium revealed that the SHPL surface cannot efficiently protect the underlying substrates from corrosion and Chlorella vulgaris cell adhesion, whereas the SHPB surface exhibited noticeable corrosion inhibition and biofouling mitigation. In addition, the synthetic SHPB surface presents good self-cleaning ability to contamination and thermal stability to hot water droplets. We believe that our findings of the anodized SHPL/SHPB Dianthus caryophyllus -on-nanowires structure are helpful in understanding the difference between superhydrophilicity and superhydrophobicity, which is beneficial for designing new bio-inspired interfacial materials with super-wettability for potential marine applications.

  • Controllable Dianthus caryophyllus-like superhydrophilic/superhydrophobic hierarchical structure based on self-congregated nanowires for corrosion inhibition and biofouling mitigation
    Chemical Engineering Journal, 2017
    Co-Authors: Binbin Zhang, Qingjun Zhu, Xiutong Wang, Xia Zhao, Congtao Sun, Baorong Hou
    Abstract:

    Abstract Here we present our findings of superhydrophilic (SHPL)/superhydrophobic (SHPB) Dianthus caryophyllus -like hierarchical structure for corrosion inhibition and biofouling mitigation through a relatively high-speed hard anodisation (HA) technique. The surface morphologies, chemical compositions were characterized by scanning electron microscopy (SEM), X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectrophotometer (FTIR). The static and dynamic behaviors of water droplets and water stream demonstrate the extremely low contact angle of SHPL surface and the low adhesive force of SHPB surface. Electrochemical impedance spectra (EIS) in 3.5 wt% NaCl solution and settlement experiments in Chlorella vulgaris -inoculated culture medium revealed that the SHPL surface cannot efficiently protect the underlying substrates from corrosion and Chlorella vulgaris cell adhesion, whereas the SHPB surface exhibited noticeable corrosion inhibition and biofouling mitigation. In addition, the synthetic SHPB surface presents good self-cleaning ability to contamination and thermal stability to hot water droplets. We believe that our findings of the anodized SHPL/SHPB Dianthus caryophyllus -on-nanowires structure are helpful in understanding the difference between superhydrophilicity and superhydrophobicity, which is beneficial for designing new bio-inspired interfacial materials with super-wettability for potential marine applications.

Binbin Zhang - One of the best experts on this subject based on the ideXlab platform.

  • controllable Dianthus caryophyllus like superhydrophilic superhydrophobic hierarchical structure based on self congregated nanowires for corrosion inhibition and biofouling mitigation
    Chemical Engineering Journal, 2017
    Co-Authors: Binbin Zhang, Xiuhua Hu, Qingjun Zhu, Xiutong Wang, Xia Zhao, Congtao Sun, Yantao Li, Baorong Hou
    Abstract:

    Abstract Here we present our findings of superhydrophilic (SHPL)/superhydrophobic (SHPB) Dianthus caryophyllus -like hierarchical structure for corrosion inhibition and biofouling mitigation through a relatively high-speed hard anodisation (HA) technique. The surface morphologies, chemical compositions were characterized by scanning electron microscopy (SEM), X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectrophotometer (FTIR). The static and dynamic behaviors of water droplets and water stream demonstrate the extremely low contact angle of SHPL surface and the low adhesive force of SHPB surface. Electrochemical impedance spectra (EIS) in 3.5 wt% NaCl solution and settlement experiments in Chlorella vulgaris -inoculated culture medium revealed that the SHPL surface cannot efficiently protect the underlying substrates from corrosion and Chlorella vulgaris cell adhesion, whereas the SHPB surface exhibited noticeable corrosion inhibition and biofouling mitigation. In addition, the synthetic SHPB surface presents good self-cleaning ability to contamination and thermal stability to hot water droplets. We believe that our findings of the anodized SHPL/SHPB Dianthus caryophyllus -on-nanowires structure are helpful in understanding the difference between superhydrophilicity and superhydrophobicity, which is beneficial for designing new bio-inspired interfacial materials with super-wettability for potential marine applications.

  • Controllable Dianthus caryophyllus-like superhydrophilic/superhydrophobic hierarchical structure based on self-congregated nanowires for corrosion inhibition and biofouling mitigation
    Chemical Engineering Journal, 2017
    Co-Authors: Binbin Zhang, Qingjun Zhu, Xiutong Wang, Xia Zhao, Congtao Sun, Baorong Hou
    Abstract:

    Abstract Here we present our findings of superhydrophilic (SHPL)/superhydrophobic (SHPB) Dianthus caryophyllus -like hierarchical structure for corrosion inhibition and biofouling mitigation through a relatively high-speed hard anodisation (HA) technique. The surface morphologies, chemical compositions were characterized by scanning electron microscopy (SEM), X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectrophotometer (FTIR). The static and dynamic behaviors of water droplets and water stream demonstrate the extremely low contact angle of SHPL surface and the low adhesive force of SHPB surface. Electrochemical impedance spectra (EIS) in 3.5 wt% NaCl solution and settlement experiments in Chlorella vulgaris -inoculated culture medium revealed that the SHPL surface cannot efficiently protect the underlying substrates from corrosion and Chlorella vulgaris cell adhesion, whereas the SHPB surface exhibited noticeable corrosion inhibition and biofouling mitigation. In addition, the synthetic SHPB surface presents good self-cleaning ability to contamination and thermal stability to hot water droplets. We believe that our findings of the anodized SHPL/SHPB Dianthus caryophyllus -on-nanowires structure are helpful in understanding the difference between superhydrophilicity and superhydrophobicity, which is beneficial for designing new bio-inspired interfacial materials with super-wettability for potential marine applications.

Takashi Onozaki - One of the best experts on this subject based on the ideXlab platform.

  • QTL analysis for flowering time in carnation (Dianthus caryophyllus L.)
    Scientia Horticulturae, 2020
    Co-Authors: Masafumi Yagi, Koji Tanase, Takashi Onozaki, Sachiko Isobe, Hideki Hirakawa, Kenta Shirasawa, Junko Matsuno, Yuichi Uno, Hiroyasu Yamaguchi
    Abstract:

    Abstract Flowering time is one of the most important traits in carnation (Dianthus caryophyllus L.) breeding because it decides the yearly yield. Two previously developed mapping populations were used to determine the number and effect of quantitative trait loci (QTLs) for flowering time. Flowering time showed large phenotypic segregation in two F2 populations and in different years. Despite the different populations and different years, one major common QTL for flowering time was detected in linkage group 10 with the effect explaining from 18.2%–22.5% of the overall phenotypic variance. We developed a DNA marker, qD1Flw1-sc43-4, that was located close to the detected QTL for flowering time. We could distinguish the flowering time and categorize the genotypes of an F1 population derived from a cross between late flowering ‘Light Pink Barbara’ and early flowering ‘Kaneainou 1 go’ using the qD1Flw1-sc43-4 marker. Our results suggest that flowering time in carnation involves several genetic factors. In this study, we identified one of the major factors for flowering time and developed a DNA marker that was tightly linked to the major QTL.

  • breeding of carnations Dianthus caryophyllus l for long vase life
    Breeding Science, 2018
    Co-Authors: Takashi Onozaki
    Abstract:

    Carnation (Dianthus caryophyllus L.) is one of the main floricultural crops in Japan and worldwide. The vase life of cut ornamental flowers, including carnations, is important in determining their quality and consumers' preference. To improve the vase life of carnation flowers, my group started a breeding research program in 1992 using conventional cross-breeding techniques. We repeatedly crossed and selected promising offspring with long vase life for seven generations, from 1992 to 2008. In 2005, we developed two cultivars, 'Miracle Rouge' and 'Miracle Symphony', with genetically determined long vase lives of 17.7 to 20.7 days (3.2 to 3.6 times that of 'White Sim') under standard conditions (23°C, 70% RH, 12-h photoperiod). Line 532-6 showed an ultra-long vase life averaging 27.8 to 32.7 days (4.6 to 5.4 times that of 'White Sim'). We evaluated changes in ethylene sensitivity with flower senescence simply and accurately using a time-lapse video recorder. In 2010, we selected line 806-46b with both ultra-long vase life (27.1 days, 4.4 times that of 'White Sim') and ethylene resistance. Analyses using six cultivars and 123 selected lines from the 1st to the 7th generations revealed that the long vase life was strongly associated with a decrease in ethylene production.

  • Sequence Analysis of the Genome of Carnation (Dianthus caryophyllus L.)
    DNA Research, 2013
    Co-Authors: Masafumi Yagi, Koji Tanase, Hideki Hirakawa, Masayoshi Nakayama, Akemi Ohmiya, Shunichi Kosugi, Taro Harada, Kyutaro Kishimoto, Kazuo Ichimura, Takashi Onozaki
    Abstract:

    The whole-genome sequence of carnation (Dianthus caryophyllus L.) cv. 'Francesco' was determined using a combination of different new-generation multiplex sequencing platforms. The total length of the non-redundant sequences was 568,887,315 bp, consisting of 45,088 scaffolds, which covered 91% of the 622 Mb carnation genome estimated by k-mer analysis. The N50 values of contigs and scaffolds were 16,644 bp and 60,737 bp, respectively, and the longest scaffold was 1,287,144 bp. The average GC content of the contig sequences was 36%. A total of 1050, 13, 92 and 143 genes for tRNAs, rRNAs, snoRNA and miRNA, respectively, were identified in the assembled genomic sequences. For protein-encoding genes, 43 266 complete and partial gene structures excluding those in transposable elements were deduced. Gene coverage was ∼ 98%, as deduced from the coverage of the core eukaryotic genes. Intensive characterization of the assigned carnation genes and comparison with those of other plant species revealed characteristic features of the carnation genome. The results of this study will serve as a valuable resource for fundamental and applied research of carnation, especially for breeding new carnation varieties. Further information on the genomic sequences is available at http://carnation.kazusa.or.jp.

  • Construction of a reference genetic linkage map for carnation (Dianthus caryophyllus L.)
    BMC Genomics, 2013
    Co-Authors: Masafumi Yagi, Koji Tanase, Sachiko Isobe, Hideki Hirakawa, Hiroyasu Yamaguchi, Satoshi Tabata, Toshiya Yamamoto, Takashi Onozaki
    Abstract:

    Background Genetic linkage maps are important tools for many genetic applications including mapping of quantitative trait loci (QTLs), identifying DNA markers for fingerprinting, and map-based gene cloning. Carnation (Dianthus caryophyllus L.) is an important ornamental flower worldwide. We previously reported a random amplified polymorphic DNA (RAPD)-based genetic linkage map derived from Dianthus capitatus ssp. andrezejowskianus and a simple sequence repeat (SSR)-based genetic linkage map constructed using data from intraspecific F2 populations; however, the number of markers was insufficient, and so the number of linkage groups (LGs) did not coincide with the number of chromosomes (x = 15). Therefore, we aimed to produce a high-density genetic map to improve its usefulness for breeding purposes and genetic research.

  • Transcriptome analysis of carnation (Dianthus caryophyllus L.) based on next-generation sequencing technology
    BMC Genomics, 2012
    Co-Authors: Koji Tanase, Sachiko Isobe, Hideki Hirakawa, Satoshi Tabata, Chikako Nishitani, Akemi Ohmiya, Takashi Onozaki
    Abstract:

    Background Carnation (Dianthus caryophyllus L.), in the family Caryophyllaceae, can be found in a wide range of colors and is a model system for studies of flower senescence. In addition, it is one of the most important flowers in the global floriculture industry. However, few genomics resources, such as sequences and markers are available for carnation or other members of the Caryophyllaceae. To increase our understanding of the genetic control of important characters in carnation, we generated an expressed sequence tag (EST) database for a carnation cultivar important in horticulture by high-throughput sequencing using 454 pyrosequencing technology.

Xiutong Wang - One of the best experts on this subject based on the ideXlab platform.

  • controllable Dianthus caryophyllus like superhydrophilic superhydrophobic hierarchical structure based on self congregated nanowires for corrosion inhibition and biofouling mitigation
    Chemical Engineering Journal, 2017
    Co-Authors: Binbin Zhang, Xiuhua Hu, Qingjun Zhu, Xiutong Wang, Xia Zhao, Congtao Sun, Yantao Li, Baorong Hou
    Abstract:

    Abstract Here we present our findings of superhydrophilic (SHPL)/superhydrophobic (SHPB) Dianthus caryophyllus -like hierarchical structure for corrosion inhibition and biofouling mitigation through a relatively high-speed hard anodisation (HA) technique. The surface morphologies, chemical compositions were characterized by scanning electron microscopy (SEM), X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectrophotometer (FTIR). The static and dynamic behaviors of water droplets and water stream demonstrate the extremely low contact angle of SHPL surface and the low adhesive force of SHPB surface. Electrochemical impedance spectra (EIS) in 3.5 wt% NaCl solution and settlement experiments in Chlorella vulgaris -inoculated culture medium revealed that the SHPL surface cannot efficiently protect the underlying substrates from corrosion and Chlorella vulgaris cell adhesion, whereas the SHPB surface exhibited noticeable corrosion inhibition and biofouling mitigation. In addition, the synthetic SHPB surface presents good self-cleaning ability to contamination and thermal stability to hot water droplets. We believe that our findings of the anodized SHPL/SHPB Dianthus caryophyllus -on-nanowires structure are helpful in understanding the difference between superhydrophilicity and superhydrophobicity, which is beneficial for designing new bio-inspired interfacial materials with super-wettability for potential marine applications.

  • Controllable Dianthus caryophyllus-like superhydrophilic/superhydrophobic hierarchical structure based on self-congregated nanowires for corrosion inhibition and biofouling mitigation
    Chemical Engineering Journal, 2017
    Co-Authors: Binbin Zhang, Qingjun Zhu, Xiutong Wang, Xia Zhao, Congtao Sun, Baorong Hou
    Abstract:

    Abstract Here we present our findings of superhydrophilic (SHPL)/superhydrophobic (SHPB) Dianthus caryophyllus -like hierarchical structure for corrosion inhibition and biofouling mitigation through a relatively high-speed hard anodisation (HA) technique. The surface morphologies, chemical compositions were characterized by scanning electron microscopy (SEM), X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectrophotometer (FTIR). The static and dynamic behaviors of water droplets and water stream demonstrate the extremely low contact angle of SHPL surface and the low adhesive force of SHPB surface. Electrochemical impedance spectra (EIS) in 3.5 wt% NaCl solution and settlement experiments in Chlorella vulgaris -inoculated culture medium revealed that the SHPL surface cannot efficiently protect the underlying substrates from corrosion and Chlorella vulgaris cell adhesion, whereas the SHPB surface exhibited noticeable corrosion inhibition and biofouling mitigation. In addition, the synthetic SHPB surface presents good self-cleaning ability to contamination and thermal stability to hot water droplets. We believe that our findings of the anodized SHPL/SHPB Dianthus caryophyllus -on-nanowires structure are helpful in understanding the difference between superhydrophilicity and superhydrophobicity, which is beneficial for designing new bio-inspired interfacial materials with super-wettability for potential marine applications.

Qingjun Zhu - One of the best experts on this subject based on the ideXlab platform.

  • controllable Dianthus caryophyllus like superhydrophilic superhydrophobic hierarchical structure based on self congregated nanowires for corrosion inhibition and biofouling mitigation
    Chemical Engineering Journal, 2017
    Co-Authors: Binbin Zhang, Xiuhua Hu, Qingjun Zhu, Xiutong Wang, Xia Zhao, Congtao Sun, Yantao Li, Baorong Hou
    Abstract:

    Abstract Here we present our findings of superhydrophilic (SHPL)/superhydrophobic (SHPB) Dianthus caryophyllus -like hierarchical structure for corrosion inhibition and biofouling mitigation through a relatively high-speed hard anodisation (HA) technique. The surface morphologies, chemical compositions were characterized by scanning electron microscopy (SEM), X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectrophotometer (FTIR). The static and dynamic behaviors of water droplets and water stream demonstrate the extremely low contact angle of SHPL surface and the low adhesive force of SHPB surface. Electrochemical impedance spectra (EIS) in 3.5 wt% NaCl solution and settlement experiments in Chlorella vulgaris -inoculated culture medium revealed that the SHPL surface cannot efficiently protect the underlying substrates from corrosion and Chlorella vulgaris cell adhesion, whereas the SHPB surface exhibited noticeable corrosion inhibition and biofouling mitigation. In addition, the synthetic SHPB surface presents good self-cleaning ability to contamination and thermal stability to hot water droplets. We believe that our findings of the anodized SHPL/SHPB Dianthus caryophyllus -on-nanowires structure are helpful in understanding the difference between superhydrophilicity and superhydrophobicity, which is beneficial for designing new bio-inspired interfacial materials with super-wettability for potential marine applications.

  • Controllable Dianthus caryophyllus-like superhydrophilic/superhydrophobic hierarchical structure based on self-congregated nanowires for corrosion inhibition and biofouling mitigation
    Chemical Engineering Journal, 2017
    Co-Authors: Binbin Zhang, Qingjun Zhu, Xiutong Wang, Xia Zhao, Congtao Sun, Baorong Hou
    Abstract:

    Abstract Here we present our findings of superhydrophilic (SHPL)/superhydrophobic (SHPB) Dianthus caryophyllus -like hierarchical structure for corrosion inhibition and biofouling mitigation through a relatively high-speed hard anodisation (HA) technique. The surface morphologies, chemical compositions were characterized by scanning electron microscopy (SEM), X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectrophotometer (FTIR). The static and dynamic behaviors of water droplets and water stream demonstrate the extremely low contact angle of SHPL surface and the low adhesive force of SHPB surface. Electrochemical impedance spectra (EIS) in 3.5 wt% NaCl solution and settlement experiments in Chlorella vulgaris -inoculated culture medium revealed that the SHPL surface cannot efficiently protect the underlying substrates from corrosion and Chlorella vulgaris cell adhesion, whereas the SHPB surface exhibited noticeable corrosion inhibition and biofouling mitigation. In addition, the synthetic SHPB surface presents good self-cleaning ability to contamination and thermal stability to hot water droplets. We believe that our findings of the anodized SHPL/SHPB Dianthus caryophyllus -on-nanowires structure are helpful in understanding the difference between superhydrophilicity and superhydrophobicity, which is beneficial for designing new bio-inspired interfacial materials with super-wettability for potential marine applications.