1994Journal of Microcolumn SeparationsRequires access

Effect of ammonia on the response of the nitrogen phosphorus detector (NPD)

Mohamed Abdel‐Rehim, Moustapha Hassan

Open publisher page 2 citations

Abstract

Abstract The effect of ammonia as a carrier gas and as a make‐up gas on the response of the nitrogen phosphorus detector (NPD) was investigated. This study showed that the response of the NPD increased 2.2 to 10.3 fold for all studied aliphatic amines when 5% ammonia in nitrogen was used as a make‐up gas. This increase was about 5.3 to 22.8 fold when ammonia was used as a carrier gas. The response of the NPD for nitro‐aromatic compounds increased 1.8 to 3.1 fold using 5% ammonia as a make‐up gas and 4.2 fold when ammonia was used as a carrier gas. The higher response obtained using ammonia as the carrier gas is related to improvements in the chromatographic performance (reduced tailing). The response of the NPD to phosphorus compounds was about 1.5 times higher using ammonia either as a carrier gas or as a make‐up gas compared to nitrogen. Although the noise of the NPD increased, the signal‐to‐noise ratios for both amines and phosphorus compounds improved with the use of ammonia.

About this research paper

What this paper is about

Abstract The effect of ammonia as a carrier gas and as a make‐up gas on the response of the nitrogen phosphorus detector (NPD) was investigated. This study showed that the response of the NPD increased 2.2 to 10.3 fold for all studied aliphatic amines when 5% ammonia in nitrogen was used as a make‐up gas. This increase was about 5.3 to 22.8 fold when ammonia was used as a carrier gas. The response of the NPD for nitro‐aromatic compounds increased 1.8 to 3.1 fold using 5% ammonia as a make‐up gas and 4.2 fold when ammonia was used as a carrier gas. The higher response obtained using ammonia as the carrier gas is related to improvements in the chromatographic performance (reduced tailing). The response of the NPD to phosphorus compounds was about 1.5 times higher using ammonia either as a carrier gas or as a make‐up gas compared to nitrogen. Although the noise of the NPD increased, the signal‐to‐noise ratios for both amines and phosphorus compounds improved with the use of ammonia.

Why it matters

OpenAlex reports 2 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Abstract The effect of ammonia as a carrier gas and as a make‐up gas on the response of the nitrogen phosphorus detector (NPD) was investigated. This study showed that the response of the NPD increased 2.2 to 10.3 fold for all studied aliphatic amines when 5% ammonia in nitrogen was used as a make‐up gas. This increase was about 5.3 to 22.8 fold when ammonia was used as a carrier gas. The response of the NPD for nitro‐aromatic compounds increased 1.8 to 3.1 fold using 5% ammonia as a make‐up gas and 4.2 fold when ammonia was used as a carrier gas. The higher response obtained using ammonia as the carrier gas is related to improvements in the chromatographic performance (reduced tailing). The response of the NPD to phosphorus compounds was about 1.5 times higher using ammonia either as a carrier gas or as a make‐up gas compared to nitrogen. Although the noise of the NPD increased, the signal‐to‐noise ratios for both amines and phosphorus compounds improved with the use of ammonia.

Key concepts: Ammonia, Chemistry, Ammonia gas, Nitrogen, Phosphorus, Nitrogen gas, Gas detector, Inorganic chemistry

Related papers

Back to paper searchBrowse research topicsOriginal source
Effect of ammonia on the response of the nitrogen phosphorus detector (NPD) — Research Paper | ScholarLens