High-throughput screening in heterogeneous [i.e. chemical] catalysis [[electronic resource] /] / edited by Alfred Hagemeyer, Peter Strasser, Anthony F. Volpe, Jr |
Pubbl/distr/stampa | Weinheim ; ; [Great Britain], : Wiley-VCH, c2004 |
Descrizione fisica | 1 online resource (341 p.) |
Disciplina | 541.395 |
Altri autori (Persone) |
HagemeyerAlfred
StrasserPeter VolpeAnthony F |
Soggetto topico |
Heterogeneous catalysis
Catalysis |
Soggetto genere / forma | Electronic books. |
ISBN |
1-280-51965-7
3-527-60410-3 |
Formato | Materiale a stampa ![]() |
Livello bibliografico | Monografia |
Lingua di pubblicazione | eng |
Nota di contenuto |
High-Throughput Screening in Heterogeneous Catalysis; Foreword; Preface; Contents; List of Contributors; 1 Impact of High-Throughput Screening Technologies on Chemical Catalysis; 1.1 Introduction; 1.2 Application of HT-R&D Methods in Heterogeneous Catalysis; 1.3 Application of HT-R&D Methods in Homogeneous Catalysis; 1.4 Conclusions; 1.5 References; 2 Mastering the Challenges of Catalyst Screening in High-Throughput Experimentation for Heterogeneously Catalyzed Gas-phase Reactions; 2.1 Challenges Connected to Catalyst Screening in Gas-phase Catalysis; 2.2 Preparative Aspects
2.3 Analytical Aspects2.3.1 Stage I Screening; 2.3.2 Stage II Screening; 2.3.3 King-System: Saving Analysis Time via Intelligent Use of Analysis Techniques; 2.4 Case Studies of Selected Examples in Gas-phase Catalysis in Stage II Screening; 2.4.1 Bulk Chemicals and Intermediates: Partial Oxidation; 2.4.2 Refinery Catalysis: High-pressure Reactions; 2.4.3 Environmental Catalysis: DeNOx Catalysis; 2.5 The Challenge of Ultrahigh-Throughput Screening; 2.5.1 Catalyst Synthesis: the Split & Pool Principle; 2.5.2 Catalyst Testing: Integrated Reactor Formats as Critical Key Components 2.6 Summary and Outlook2.7 References; 3 High-Throughput Workflow Development: Strategies and Examples in Heterogeneous Catalysis; 3.1 Introduction; 3.2 High-Throughput Methods; 3.2.1 DOE - Designing Experiments Based on Statistics; 3.2.2 Constrained Optimization - Independent Variables; 3.2.3 Constrained Optimization - Dependent Variables; 3.2.4 Methods to Include Synthesis Hardware Constraints; 3.2.5 Process Simulation for Hardware Bottleneck Identification; 3.3 Workflow Components; 3.3.1 Primary Synthesis; 3.3.2 Primary Synthesis: Wafer-based Sol-gel and Evaporative Synthesis 3.3.3 Primary Synthesis: Wafer-based Impregnation Synthesis3.3.4 Primary Screening: Scanning Mass Spectrometer; 3.3.5 Primary Screening: Massively Parallel Microfluidic Reactor; 3.3.6 Secondary Synthesis: Bulk Impregnation; 3.3.7 Secondary Synthesis: Bulk Evaporation/Precipitation; 3.3.8 Secondary Synthesis: Hydrothermal; 3.3.9 Secondary Screening: 48-Channel Fixed-bed Reactor; 3.3.10 High-Throughput Catalyst Characterization; 3.3.11 Tertiary Screening; 3.4 Example: Ethane to Ethylene; 3.5 Example: Ethane to Acetic Acid; 3.6 Example: Propane to Acrylonitrile; 3.7 Summary; 3.8 References 4 Integrated Microreactor Set-ups for High-Throughput Screening and Methods for the Evaluation of "Low-density" Screening Data4.1 Introduction; 4.1.1 Pellet-type and Ceramic Reactors; 4.1.2 Multiple Microchannel Array Reactors; 4.1.3 Chip-type Reactors; 4.1.4 Well-type Reactors; 4.2 Steady-state Reactor Set-ups; 4.2.1 Methanol Steam Reforming; 4.2.2 Propane Steam Reforming; 4.2.3 Catalytic Methane Combustion and Methods for Sample Preparation; 4.2.3.1 Wet Chemical Procedure (Washcoating/Flow Impregnation); 4.2.3.2 Experimental and Discussion; 4.3 Transient-state Reactor Set-ups 4.3.1 Introduction |
Record Nr. | UNINA-9910144329003321 |
Weinheim ; ; [Great Britain], : Wiley-VCH, c2004 | ||
![]() | ||
Lo trovi qui: Univ. Federico II | ||
|
High-throughput screening in heterogeneous [i.e. chemical] catalysis [[electronic resource] /] / edited by Alfred Hagemeyer, Peter Strasser, Anthony F. Volpe, Jr |
Pubbl/distr/stampa | Weinheim ; ; [Great Britain], : Wiley-VCH, c2004 |
Descrizione fisica | 1 online resource (341 p.) |
Disciplina | 541.395 |
Altri autori (Persone) |
HagemeyerAlfred
StrasserPeter VolpeAnthony F |
Soggetto topico |
Heterogeneous catalysis
Catalysis |
ISBN |
1-280-51965-7
3-527-60410-3 |
Formato | Materiale a stampa ![]() |
Livello bibliografico | Monografia |
Lingua di pubblicazione | eng |
Nota di contenuto |
High-Throughput Screening in Heterogeneous Catalysis; Foreword; Preface; Contents; List of Contributors; 1 Impact of High-Throughput Screening Technologies on Chemical Catalysis; 1.1 Introduction; 1.2 Application of HT-R&D Methods in Heterogeneous Catalysis; 1.3 Application of HT-R&D Methods in Homogeneous Catalysis; 1.4 Conclusions; 1.5 References; 2 Mastering the Challenges of Catalyst Screening in High-Throughput Experimentation for Heterogeneously Catalyzed Gas-phase Reactions; 2.1 Challenges Connected to Catalyst Screening in Gas-phase Catalysis; 2.2 Preparative Aspects
2.3 Analytical Aspects2.3.1 Stage I Screening; 2.3.2 Stage II Screening; 2.3.3 King-System: Saving Analysis Time via Intelligent Use of Analysis Techniques; 2.4 Case Studies of Selected Examples in Gas-phase Catalysis in Stage II Screening; 2.4.1 Bulk Chemicals and Intermediates: Partial Oxidation; 2.4.2 Refinery Catalysis: High-pressure Reactions; 2.4.3 Environmental Catalysis: DeNOx Catalysis; 2.5 The Challenge of Ultrahigh-Throughput Screening; 2.5.1 Catalyst Synthesis: the Split & Pool Principle; 2.5.2 Catalyst Testing: Integrated Reactor Formats as Critical Key Components 2.6 Summary and Outlook2.7 References; 3 High-Throughput Workflow Development: Strategies and Examples in Heterogeneous Catalysis; 3.1 Introduction; 3.2 High-Throughput Methods; 3.2.1 DOE - Designing Experiments Based on Statistics; 3.2.2 Constrained Optimization - Independent Variables; 3.2.3 Constrained Optimization - Dependent Variables; 3.2.4 Methods to Include Synthesis Hardware Constraints; 3.2.5 Process Simulation for Hardware Bottleneck Identification; 3.3 Workflow Components; 3.3.1 Primary Synthesis; 3.3.2 Primary Synthesis: Wafer-based Sol-gel and Evaporative Synthesis 3.3.3 Primary Synthesis: Wafer-based Impregnation Synthesis3.3.4 Primary Screening: Scanning Mass Spectrometer; 3.3.5 Primary Screening: Massively Parallel Microfluidic Reactor; 3.3.6 Secondary Synthesis: Bulk Impregnation; 3.3.7 Secondary Synthesis: Bulk Evaporation/Precipitation; 3.3.8 Secondary Synthesis: Hydrothermal; 3.3.9 Secondary Screening: 48-Channel Fixed-bed Reactor; 3.3.10 High-Throughput Catalyst Characterization; 3.3.11 Tertiary Screening; 3.4 Example: Ethane to Ethylene; 3.5 Example: Ethane to Acetic Acid; 3.6 Example: Propane to Acrylonitrile; 3.7 Summary; 3.8 References 4 Integrated Microreactor Set-ups for High-Throughput Screening and Methods for the Evaluation of "Low-density" Screening Data4.1 Introduction; 4.1.1 Pellet-type and Ceramic Reactors; 4.1.2 Multiple Microchannel Array Reactors; 4.1.3 Chip-type Reactors; 4.1.4 Well-type Reactors; 4.2 Steady-state Reactor Set-ups; 4.2.1 Methanol Steam Reforming; 4.2.2 Propane Steam Reforming; 4.2.3 Catalytic Methane Combustion and Methods for Sample Preparation; 4.2.3.1 Wet Chemical Procedure (Washcoating/Flow Impregnation); 4.2.3.2 Experimental and Discussion; 4.3 Transient-state Reactor Set-ups 4.3.1 Introduction |
Record Nr. | UNINA-9910830770403321 |
Weinheim ; ; [Great Britain], : Wiley-VCH, c2004 | ||
![]() | ||
Lo trovi qui: Univ. Federico II | ||
|
High-throughput screening in heterogeneous [i.e. chemical] catalysis / / edited by Alfred Hagemeyer, Peter Strasser, Anthony F. Volpe, Jr |
Pubbl/distr/stampa | Weinheim ; ; [Great Britain], : Wiley-VCH, c2004 |
Descrizione fisica | 1 online resource (341 p.) |
Disciplina | 541.395 |
Altri autori (Persone) |
HagemeyerAlfred
StrasserPeter VolpeAnthony F |
Soggetto topico |
Heterogeneous catalysis
Catalysis |
ISBN |
9781280519659
1280519657 9783527604104 3527604103 |
Formato | Materiale a stampa ![]() |
Livello bibliografico | Monografia |
Lingua di pubblicazione | eng |
Nota di contenuto |
High-Throughput Screening in Heterogeneous Catalysis; Foreword; Preface; Contents; List of Contributors; 1 Impact of High-Throughput Screening Technologies on Chemical Catalysis; 1.1 Introduction; 1.2 Application of HT-R&D Methods in Heterogeneous Catalysis; 1.3 Application of HT-R&D Methods in Homogeneous Catalysis; 1.4 Conclusions; 1.5 References; 2 Mastering the Challenges of Catalyst Screening in High-Throughput Experimentation for Heterogeneously Catalyzed Gas-phase Reactions; 2.1 Challenges Connected to Catalyst Screening in Gas-phase Catalysis; 2.2 Preparative Aspects
2.3 Analytical Aspects2.3.1 Stage I Screening; 2.3.2 Stage II Screening; 2.3.3 King-System: Saving Analysis Time via Intelligent Use of Analysis Techniques; 2.4 Case Studies of Selected Examples in Gas-phase Catalysis in Stage II Screening; 2.4.1 Bulk Chemicals and Intermediates: Partial Oxidation; 2.4.2 Refinery Catalysis: High-pressure Reactions; 2.4.3 Environmental Catalysis: DeNOx Catalysis; 2.5 The Challenge of Ultrahigh-Throughput Screening; 2.5.1 Catalyst Synthesis: the Split & Pool Principle; 2.5.2 Catalyst Testing: Integrated Reactor Formats as Critical Key Components 2.6 Summary and Outlook2.7 References; 3 High-Throughput Workflow Development: Strategies and Examples in Heterogeneous Catalysis; 3.1 Introduction; 3.2 High-Throughput Methods; 3.2.1 DOE - Designing Experiments Based on Statistics; 3.2.2 Constrained Optimization - Independent Variables; 3.2.3 Constrained Optimization - Dependent Variables; 3.2.4 Methods to Include Synthesis Hardware Constraints; 3.2.5 Process Simulation for Hardware Bottleneck Identification; 3.3 Workflow Components; 3.3.1 Primary Synthesis; 3.3.2 Primary Synthesis: Wafer-based Sol-gel and Evaporative Synthesis 3.3.3 Primary Synthesis: Wafer-based Impregnation Synthesis3.3.4 Primary Screening: Scanning Mass Spectrometer; 3.3.5 Primary Screening: Massively Parallel Microfluidic Reactor; 3.3.6 Secondary Synthesis: Bulk Impregnation; 3.3.7 Secondary Synthesis: Bulk Evaporation/Precipitation; 3.3.8 Secondary Synthesis: Hydrothermal; 3.3.9 Secondary Screening: 48-Channel Fixed-bed Reactor; 3.3.10 High-Throughput Catalyst Characterization; 3.3.11 Tertiary Screening; 3.4 Example: Ethane to Ethylene; 3.5 Example: Ethane to Acetic Acid; 3.6 Example: Propane to Acrylonitrile; 3.7 Summary; 3.8 References 4 Integrated Microreactor Set-ups for High-Throughput Screening and Methods for the Evaluation of "Low-density" Screening Data4.1 Introduction; 4.1.1 Pellet-type and Ceramic Reactors; 4.1.2 Multiple Microchannel Array Reactors; 4.1.3 Chip-type Reactors; 4.1.4 Well-type Reactors; 4.2 Steady-state Reactor Set-ups; 4.2.1 Methanol Steam Reforming; 4.2.2 Propane Steam Reforming; 4.2.3 Catalytic Methane Combustion and Methods for Sample Preparation; 4.2.3.1 Wet Chemical Procedure (Washcoating/Flow Impregnation); 4.2.3.2 Experimental and Discussion; 4.3 Transient-state Reactor Set-ups 4.3.1 Introduction |
Altri titoli varianti | High-throughput screening in chemical catalysis |
Record Nr. | UNINA-9910877557903321 |
Weinheim ; ; [Great Britain], : Wiley-VCH, c2004 | ||
![]() | ||
Lo trovi qui: Univ. Federico II | ||
|
Philosophie der Wirklichkeitssuche / Peter Strasser |
Autore | Strasser, Peter |
Pubbl/distr/stampa | Frankfurt am Main, : Suhrkamp, 1989 |
Descrizione fisica | 234 p. ; 18 cm |
Collana | Edition Suhrkamp. Neue Folge |
Formato | Materiale a stampa ![]() |
Livello bibliografico | Monografia |
Lingua di pubblicazione | ger |
Record Nr. | UNISOB-E600200072010 |
Strasser, Peter
![]() |
||
Frankfurt am Main, : Suhrkamp, 1989 | ||
![]() | ||
Lo trovi qui: Univ. Suor Orsola Benincasa | ||
|
Wirklichkeitskonstruktion und Rationalität : ein Versuch über den Relativismus / Peter Strasser |
Autore | Strasser, Peter |
Pubbl/distr/stampa | Freiburg ; München : Alber, 1980 |
Descrizione fisica | 204 p. ; 21 cm |
Disciplina | 146.42 |
Collana | Alber-Broschur Philosophie |
Soggetto non controllato |
Relativismo - Realtà
Relativismo - Razionalità |
Formato | Materiale a stampa ![]() |
Livello bibliografico | Monografia |
Lingua di pubblicazione | ger |
Record Nr. | UNINA-990004016440403321 |
Strasser, Peter
![]() |
||
Freiburg ; München : Alber, 1980 | ||
![]() | ||
Lo trovi qui: Univ. Federico II | ||
|