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Merck

449865

Sigma-Aldrich

塩化鉛(II)

AnhydroBeads, −10 mesh, 99.999%

別名:

塩化鉛鉱

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About This Item

化学式:
PbCl2
CAS番号:
分子量:
278.11
EC Number:
MDL番号:
UNSPSCコード:
12352302
PubChem Substance ID:
NACRES:
NA.23
アッセイ:
99.999%

蒸気圧

1 mmHg ( 547 °C)

品質水準

製品種目

AnhydroBeads

アッセイ

99.999%

反応適合性

reagent type: catalyst
core: lead

不純物

≤15.0 ppm Trace Metal Analysis

粒径

−10 mesh

bp

950 °C (lit.)

mp

501 °C (lit.)

密度

5.85 g/mL at 25 °C (lit.)

SMILES記法

Cl[PbH2]Cl

InChI

1S/2ClH.Pb/h2*1H;/q;;+2/p-2

InChI Key

HWSZZLVAJGOAAY-UHFFFAOYSA-L

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法的情報

AnhydroBeads is a trademark of Sigma-Aldrich Co. LLC

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ピクトグラム

Health hazardExclamation markEnvironment

シグナルワード

Danger

危険有害性の分類

Acute Tox. 4 Inhalation - Acute Tox. 4 Oral - Aquatic Acute 1 - Aquatic Chronic 1 - Carc. 2 - Repr. 1A - STOT RE 1

保管分類コード

6.1C - Combustible acute toxic Cat.3 / toxic compounds or compounds which causing chronic effects

WGK

WGK 3

引火点(°F)

Not applicable

引火点(℃)

Not applicable

個人用保護具 (PPE)

Eyeshields, Gloves, type P3 (EN 143) respirator cartridges


適用法令

試験研究用途を考慮した関連法令を主に挙げております。化学物質以外については、一部の情報のみ提供しています。 製品を安全かつ合法的に使用することは、使用者の義務です。最新情報により修正される場合があります。WEBの反映には時間を要することがあるため、適宜SDSをご参照ください。

毒物及び劇物取締法

劇物

PRTR

特定第一種指定化学物質

労働安全衛生法名称等を表示すべき危険物及び有害物

名称等を表示すべき危険物及び有害物

労働安全衛生法名称等を通知すべき危険物及び有害物

名称等を通知すべき危険物及び有害物

Jan Code

449865-5G:4548173152929
449865-25G-PW:
449865-5G-PW:
449865-25G:4548173152912
449865-VAR:
449865-BULK:


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Takashi Okada et al.
Journal of environmental management, 110, 207-214 (2012-07-14)
This study investigated the effect of the chemical composition of incineration fly ash on the leaching characteristics of Pb from melting furnace fly ash generated by melting incineration fly ash. Melting furnace fly ash from both a real-scale melting process
I Sá et al.
Toxicology and industrial health, 28(2), 108-113 (2011-06-15)
The increasing use of lead (Pb) for industrial purposes has resulted in the significant increase in environmental contamination of our planet especially in concern to water and food. In this study using the electron scanning microscopy (SEM), the authors showed
Alma S Sobrino et al.
Journal of environmental science and health. Part A, Toxic/hazardous substances & environmental engineering, 45(1), 107-110 (2010-04-15)
The vascular aquatic plant Lemna gibba (duckweed) was exposed during seven days to lead (Pb) at concentrations ranging from 50 to 300 mg/L in a greenhouse with controlled photoperiod and temperature. The effects of Pb on growth of Lemna gibba
Muhammad Rafique et al.
Journal of the College of Physicians and Surgeons--Pakistan : JCPSP, 19(8), 510-513 (2009-08-05)
To determine the effects of lead and zinc administration on the quality of semen of albino rats. Experimental study. Basic Medical Sciences Institute, Jinnah Postgraduate Medical Centre, Karachi, from August 2003 to December 2005. Sixty adult albino rats selected for
Fan-xin Qin et al.
Guang pu xue yu guang pu fen xi = Guang pu, 27(10), 2123-2126 (2008-03-01)
A method for the determination of lead in Chinese medicinal materials by GFAAS with PdCl2 as a matrix modifier was established. By comparing PdCl2 with NH4H2PO4 in improving effect on the determination of Pb, the dosage of PdCl2, acidity of

資料

Since the first report of the low-cost dye-sensitized solar cell (DSSC) in 1991 by Gratzel and his coworker,1 dye-sensitized solar cells (DSSC) has been regarded as one of the most promising photovoltaic technologies because of their transparent and colorful characteristics, as well as low cost.

Since the first report of the low-cost dye-sensitized solar cell (DSSC) in 1991 by Gratzel and his coworker,1 dye-sensitized solar cells (DSSC) has been regarded as one of the most promising photovoltaic technologies because of their transparent and colorful characteristics, as well as low cost.

The past several decades have seen major advancements in the synthesis of metal nanomaterials. Most recently, controlled synthesis has become versatile enough to regulate the exact number of atoms and ligands of very small metal nanoparticles, referred to as “clusters”.

The past several decades have seen major advancements in the synthesis of metal nanomaterials. Most recently, controlled synthesis has become versatile enough to regulate the exact number of atoms and ligands of very small metal nanoparticles, referred to as “clusters”.

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