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Institute of Chemistry,
Center for Nanoscience and Nanotechnology
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Mutual control of axial and equatorial ligands: model studies with [Ni]-bacteriochlorophyll-a.
Journal of the American Chemical Society Jul, 2002 | Pubmed ID: 12105922
An experimental look into subelectron charge flow.
Journal of the American Chemical Society Oct, 2003 | Pubmed ID: 14558808
Enhancement of molecular properties in thin films by controlled orientation of molecular building blocks.
Journal of the American Chemical Society Mar, 2004 | Pubmed ID: 14995177
Direct experimental evaluation of charge scheme performance by a molecular charge-meter.
Journal of the American Chemical Society May, 2004 | Pubmed ID: 15125682
Modulation of fragmental charge transfer via hydrogen bonds. Direct measurement of electronic contributions.
The journal of physical chemistry. A Jan, 2006 | Pubmed ID: 16405312
Uniform approach to bacteriochlorophyll-based monolayers on conducting, semiconducting, and insulating substrates.
The journal of physical chemistry. B Apr, 2005 | Pubmed ID: 16851783
Submolecular potential profiling across organic monolayers.
Nano letters Dec, 2006 | Pubmed ID: 17163717
Generic nanomaterial positioning by carrier and stationary phase design.
Nano letters Sep, 2007 | Pubmed ID: 17661524
Wafer-scale assembly of highly ordered semiconductor nanowire arrays by contact printing.
Nano letters Jan, 2008 | Pubmed ID: 17696563
Controlled nanoscale doping of semiconductors via molecular monolayers.
Nature materials Jan, 2008 | Pubmed ID: 17994026
Phosphine oxide monolayers on SiO2 surfaces.
Angewandte Chemie (International ed. in English) , 2008 | Pubmed ID: 18461577
Wafer-scale, sub-5 nm junction formation by monolayer doping and conventional spike annealing.
Nano letters Feb, 2009 | Pubmed ID: 19161334
Transformation of organic-inorganic hybrid films obtained by molecular layer deposition to photocatalytic layers with enhanced activity.
ACS nano Aug, 2012 | Pubmed ID: 22768917
Contact doping of silicon wafers and nanostructures with phosphine oxide monolayers.
ACS nano Nov, 2012 | Pubmed ID: 23083376
Facile monolayer formation on SiO2 surfaces via organoboron functionalities.
Angewandte Chemie (International ed. in English) Jul, 2013 | Pubmed ID: 23737248
The Hebrew University of Jerusalem
Ori Hazut1,2,
Arunava Agarwala1,2,
Thangavel Subramani1,2,
Sharon Waichman1,2,
Roie Yerushalmi1,2
1Institute of Chemistry, The Hebrew University of Jerusalem,
2Center for Nanoscience and Nanotechnology, The Hebrew University of Jerusalem
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