12 research outputs found
Kvaliteta sireva u AP Vojvodini
Vojvodina predstavlja jedan od centara prehrambene industrije u naÅ”oj zemlji, blagodareÄi povoljnim uvjetima u pogledu sirovinske baze. Mljekarska industrija praktiÄno se razvila za posljednjih 10 godina, a u njoj industrija sireva s godiÅ”njim kapacitetom od blizu 1000 vagona zauzima znaÄajno mjesto
Osvrt na naÅ”e propise o mlijeku i mljeÄnim proizvodima
U razmatranju naÅ”ih zakonskih propisa zaslužuje pažnju ne samo ona tvar, koja je obuhvaÄena zakonskim regulativama, nego i ona koja njima nije obuhvaÄena
Pregled analitiÄkih metoda odreÄivanja suhe tvari u siru
Po osnovnim oznakama konzistencije, sireve dijelimo na tvrde i meke. Ove osnovne oznake konzistencije jednim dijelom Äini sadržaj suhe tvari materije, odnosno koliÄina vode u siru
Cova de Can SadurnĆ, la transformaciĆ³ dāun jaciment. Lāepisodi sepulcral del neolĆtic postcardial
The
present study deals with the structural characterization and classification
of the novel compounds <b>1</b>ā<b>8</b> into perovskite
subclasses and proceeds in extracting the structureāband gap
relationships between them. The compounds were obtained from the employment
of small, 3ā5-atom-wide organic ammonium ions seeking to discover
new perovskite-like compounds. The compounds reported here adopt unique
or rare structure types akin to the prototype structure perovskite.
When trimethylammonium (TMA) was employed, we obtained TMASnI<sub>3</sub> (<b>1</b>), which is our reference compound for a āperovskitoidā
structure of face-sharing octahedra. The compounds EASnI<sub>3</sub> (<b>2b</b>), GASnI<sub>3</sub> (<b>3a</b>), ACASnI<sub>3</sub> (<b>4</b>), and IMSnI<sub>3</sub> (<b>5</b>)
obtained from the use of ethylammonium (EA), guanidinium (GA), acetamidinium
(ACA), and imidazolium (IM) cations, respectively, represent the first
entries of the so-called āhexagonal perovskite polytypesā
in the hybrid halide perovskite library. The hexagonal perovskites
define a new family of hybrid halide perovskites with a crystal structure
that emerges from a blend of corner- and face-sharing octahedral connections
in various proportions. The small organic cations can also stabilize
a second structural type characterized by a crystal lattice with reduced
dimensionality. These compounds include the two-dimensional (2D) perovskites
GA<sub>2</sub>SnI<sub>4</sub> (<b>3b</b>) and IPA<sub>3</sub>Sn<sub>2</sub>I<sub>7</sub> (<b>6b</b>) and the one-dimensional
(1D) perovskite IPA<sub>3</sub>SnI<sub>5</sub> (<b>6a</b>).
The known 2D perovskite BA<sub>2</sub>MASn<sub>2</sub>I<sub>7</sub> (<b>7</b>) and the related all-inorganic 1D perovskite āRbSnF<sub>2</sub>Iā (<b>8</b>) have also been synthesized. All
compounds have been identified as medium-to-wide-band-gap semiconductors
in the range of <i>E</i><sub>g</sub> = 1.90ā2.40
eV, with the band gap progressively decreasing with increased corner-sharing
functionality and increased torsion angle in the octahedral connectivity
Neke karakteristike kvalitete sitnog sira na beogradskom tržiŔtu
U toku posljednjih nekoliko godina beogradsko tržiÅ”te je dosta dobro snabdjeveno sirovima kako u pogledu koliÄina tako i u pogledu asortimana. Å iri asortiman sireva najviÅ”e je zastupljen u specijaliziranim prodavnicama i u veÄim samoposlugama. Snabdjevanje ovih prodavnica vrÅ”i se preko trgovaÄke mreže koja se povezuje sa sirarskim industrijskim pogonima u raznim krajevima naÅ”e zemlje, a za pojedine vrste sireva i sa kooperativnim organizacijama
StructureāBand Gap Relationships in Hexagonal Polytypes and Low-Dimensional Structures of Hybrid Tin Iodide Perovskites
The
present study deals with the structural characterization and classification
of the novel compounds <b>1</b>ā<b>8</b> into perovskite
subclasses and proceeds in extracting the structureāband gap
relationships between them. The compounds were obtained from the employment
of small, 3ā5-atom-wide organic ammonium ions seeking to discover
new perovskite-like compounds. The compounds reported here adopt unique
or rare structure types akin to the prototype structure perovskite.
When trimethylammonium (TMA) was employed, we obtained TMASnI<sub>3</sub> (<b>1</b>), which is our reference compound for a āperovskitoidā
structure of face-sharing octahedra. The compounds EASnI<sub>3</sub> (<b>2b</b>), GASnI<sub>3</sub> (<b>3a</b>), ACASnI<sub>3</sub> (<b>4</b>), and IMSnI<sub>3</sub> (<b>5</b>)
obtained from the use of ethylammonium (EA), guanidinium (GA), acetamidinium
(ACA), and imidazolium (IM) cations, respectively, represent the first
entries of the so-called āhexagonal perovskite polytypesā
in the hybrid halide perovskite library. The hexagonal perovskites
define a new family of hybrid halide perovskites with a crystal structure
that emerges from a blend of corner- and face-sharing octahedral connections
in various proportions. The small organic cations can also stabilize
a second structural type characterized by a crystal lattice with reduced
dimensionality. These compounds include the two-dimensional (2D) perovskites
GA<sub>2</sub>SnI<sub>4</sub> (<b>3b</b>) and IPA<sub>3</sub>Sn<sub>2</sub>I<sub>7</sub> (<b>6b</b>) and the one-dimensional
(1D) perovskite IPA<sub>3</sub>SnI<sub>5</sub> (<b>6a</b>).
The known 2D perovskite BA<sub>2</sub>MASn<sub>2</sub>I<sub>7</sub> (<b>7</b>) and the related all-inorganic 1D perovskite āRbSnF<sub>2</sub>Iā (<b>8</b>) have also been synthesized. All
compounds have been identified as medium-to-wide-band-gap semiconductors
in the range of <i>E</i><sub>g</sub> = 1.90ā2.40
eV, with the band gap progressively decreasing with increased corner-sharing
functionality and increased torsion angle in the octahedral connectivity
StructureāBand Gap Relationships in Hexagonal Polytypes and Low-Dimensional Structures of Hybrid Tin Iodide Perovskites
The
present study deals with the structural characterization and classification
of the novel compounds <b>1</b>ā<b>8</b> into perovskite
subclasses and proceeds in extracting the structureāband gap
relationships between them. The compounds were obtained from the employment
of small, 3ā5-atom-wide organic ammonium ions seeking to discover
new perovskite-like compounds. The compounds reported here adopt unique
or rare structure types akin to the prototype structure perovskite.
When trimethylammonium (TMA) was employed, we obtained TMASnI<sub>3</sub> (<b>1</b>), which is our reference compound for a āperovskitoidā
structure of face-sharing octahedra. The compounds EASnI<sub>3</sub> (<b>2b</b>), GASnI<sub>3</sub> (<b>3a</b>), ACASnI<sub>3</sub> (<b>4</b>), and IMSnI<sub>3</sub> (<b>5</b>)
obtained from the use of ethylammonium (EA), guanidinium (GA), acetamidinium
(ACA), and imidazolium (IM) cations, respectively, represent the first
entries of the so-called āhexagonal perovskite polytypesā
in the hybrid halide perovskite library. The hexagonal perovskites
define a new family of hybrid halide perovskites with a crystal structure
that emerges from a blend of corner- and face-sharing octahedral connections
in various proportions. The small organic cations can also stabilize
a second structural type characterized by a crystal lattice with reduced
dimensionality. These compounds include the two-dimensional (2D) perovskites
GA<sub>2</sub>SnI<sub>4</sub> (<b>3b</b>) and IPA<sub>3</sub>Sn<sub>2</sub>I<sub>7</sub> (<b>6b</b>) and the one-dimensional
(1D) perovskite IPA<sub>3</sub>SnI<sub>5</sub> (<b>6a</b>).
The known 2D perovskite BA<sub>2</sub>MASn<sub>2</sub>I<sub>7</sub> (<b>7</b>) and the related all-inorganic 1D perovskite āRbSnF<sub>2</sub>Iā (<b>8</b>) have also been synthesized. All
compounds have been identified as medium-to-wide-band-gap semiconductors
in the range of <i>E</i><sub>g</sub> = 1.90ā2.40
eV, with the band gap progressively decreasing with increased corner-sharing
functionality and increased torsion angle in the octahedral connectivity