PIM-1 (polymer intrinsic microporosity-1)은 뒤틀린 구조에 기인한 높은 기체 투과 특성을 가지고 있기 때문에 기 체 분리막 소재 중 하나로 활발히 연구되어졌다. 높은 기체 투과 특성의 장점에도 불구하고 높지 않은 기체 선택성의 한계점 이 존재함에 따라 본 연구에서는 PIM-1 분리막에 PEG/PPG-CN을 첨가함으로써 CO2의 용해도 증가에 따른 기체 선택도를 높이고 열처리를 진행하여 PIM-1과 PEG/PPG-CN의 사이아노기가 트라이아진으로 전환되는 재배열을 유도하였다. 그 결과 2 wt%의 PEG/PPG-CN이 첨가되고 열처리된 PIM-1 분리막의 성능은 열처리만 된 PIM-1 분리막과 비교하였을 때 단일 및 혼 합 기체 조건에서 더 높은 이산화탄소의 투과도와 선택도를 가지는 것으로 측정되었다. 혼합 기체 조건에서는 단일 기체 조 건에서 보다 높은 이산화탄소 투과도와 선택도를 보이며 실제 기체 분리 공정의 적용 가능성이 높다는 것을 확인하였으며 트 라이아진의 가교에 의하여 기체 분리막이 가소화 저항성(anti-plasticization)을 가지는 것으로 확인되었다.
Graphitic carbon nitride ( C3N4) has been intensively studied in the last 25 years. Although the number of papers about C3N4 published per year has been growing exponentially, there are still some unclear issues with this material. One of them is s-triazine C3N4 (s-C3N4), which is an allotrope of C3N4. The theoretical computational as well as experimental synthetic results are not unambiguous. The properties of s-C3N4 have been described only in two papers, and no similar and reproducible results have been obtained so far. This paper provides a brief overview of s-C3N4 to bring attention to this material, for example, as a potential photocatalyst.
Doped porous carbon materials have attracted great interest owing to their excellent electrochemical performance toward energy storage applications. In this report, we described the synthesis of nitrogen-doped porous carbon (N-PC) via carbonization of a triazine-based covalent organic framework (COF) synthesized by Friedel–Crafts reaction. The as-synthesized COF and N-PC were confirmed by X-ray diffraction. The N-PC exhibited many merits including high surface area (711 m2 g−1), porosity, uniform pore size, and surface wettability due to the heteroatom-containing lone pair of electron. The N-PC showed a high specific capacitance of 112 F g−1 at a current density of 1.0 A g−1 and excellent cyclic stability with 10.6% capacitance loss after 5000 cycles at a current density of 2.0 A g−1. These results revealed that the COF materials are desirable for future research on energy storage devices.
공유결합 유기 구조체(COF)의 한 가지로서, 공유결합 트리아진 구조체(CTF)는 이온 열 삼량 체화 반응을 통해 제조된 반복되는 육각형 트리아진 고리의 네트워크로 구성되어 본질적으로 다공성 구조를 가진다. 또한 일부 화학 물질에 대한 친화성을 높이고 다른 화학 물질을 배제하는 많은 질소 작용기를 포함한다. 조절 가능한 특성 때문에 많은 연구자들이 기체 및 액체 분리 공정을 위한 CTF의 소재를 합성하고 테스트했다. 새로운 CTF, 혼합 CTF 복합재 및 CTF 멤브레인에 대한 다양한 연구가 기체흡착, 기체분리(예 : CO2, C2H2, H2 등) 및 담수화에 대해 연구되었다. 일부 CTF 연구는 고급 컴퓨터 시뮬레이션을 통해 한계와 잠재력을 결정했으며 후속 실험에서는 광촉매 특성에 대한 CTF를 테스트하여 더 큰 지속 가능성을 위한 재활용 가능성을 제안했다. 이 총설에서는 공유결합 트리아진 구조체 기반 분리막에 대해 설명할 예정이다.
In this paper, we describe a study on the relationship between neutral emulsion manufacture and hardening test of films. The hardeners were prepared by condensation of equimolar amounts of trichlorotriazine with benzene- or naphthalene-based amino or oxy acids at 0 to 5℃ and at pH 7, and used as hardening agents for gelatin. The hardening test of neutral emulsion layers was studied at pH 7.0. For example I(R=ONa) had strong hardening properties, I substituted with an aminobenzosulfonate moiety (R=NHC6H4-p-SO3Me where Me = K, Na) was a much weaker gelatin hardener, and when substituted with amino- or oxynaphthalene derivative (II, III) did not harden gelatin at all. Compound with 2 dichlorotriazine groups as IV exhibited hardening properties. The hardener can be used in neutral emulsion layer of film and showed good hardening effect.
The tfTZ(4,4',4"-trifluoro-triazine) was used as a hole blocking material for the electroluminescent devices(ELDs) in this study. In general, the holes are outnumbered the electrons in hole transport and emitting layers because the hole transport is more efficient in most organic ELDs. The hole blocking layer are expected to control the excess holes to increase the recombination of holes and electrons and to decrease current density. The former study using the 2,4,6-triphenyl-1,3,5-triazine(TTA) as hole blocking layer showed that the TTA did not form stable films with vapor deposition technique. The tfTZ can generate stable evaporated films, moreover the fluorine group can lower the highest occupied molecular orbital(HOMO) level, which produces the energy barrier for the holes. The tfTZ has high electron affinities according to the data by the Cyclic-Voltammety(CV) method, which is developed for the measurement of HOMO and lowest occupied molecular orbital(LUMO) level of organic thin films. The lowered HOMO level is made the tfTZ to be applied for a hole blocking layer in ELDs. We fabricated multilayer ELDs with a structure of ITO/hole blocking layer(HBL)/hole transporting layer(HTL)/emitting layer/electrode. The hole blocking properties of this devices is confirmed from the lowered current density values compared with that without hole blocking layer.
Background: Cyanazine is used as a pre-emergent herbicide once during the growing season to control weeds of many upland crops worldwide. This study aimed to establish a method to determined cyanazine residue levels in major medicinal crops by using high performance liquid chromatography-UV detection/mass spectometry (HPLC-UVD/MS).
Methods and Results: Cyanazine residue was extracted with acetone from the raw products of four representative medicinal plants - Scutellaria baicalensis, Paeonia lactiflora, Platycodon grandiflorum and Angelica gigas. The extract was diluted with a large volume of saline water and directly partitioned into dichloromethane to remove polar co-extractives in the aqueous phase. It was then purifined using optimized Florisil column chromatography. HPLC analysis conducted using an octadecylsilyl column allowed the successful separation of cyanazine from co-extractives of the samples, and the amount was sensitively quantified by ultraviolet absorption at 225 ㎚ with no interference. The accuracy and precision of the proposed method were validated by conducting recovery experiments on each medicinal crop sample fortified with cyanazine at two concentration levels per crop in triplicate.
Conclusions: The mean recoveries ranged from 91.2% to 105.3% for the four representative medicinal crops. The coefficients of variation were less than 10%, irrespective of the sample types and fortification levels. The limit of quantification of cyanazine was 0.02 ㎎/㎏ as verified by the recovery experiment. A confirmatory method was performed by liquid chromatography/MS using selected-ion monitoring technique to clearly identify the suspected residue.