
Robert Thomas Crow
Examiner (ID: 5393, Phone: (571)272-1113 , Office: P/1634 )
| Most Active Art Unit | 1634 |
| Art Unit(s) | 4167, 4144, 1634, 4152, 1683, 4100 |
| Total Applications | 928 |
| Issued Applications | 321 |
| Pending Applications | 104 |
| Abandoned Applications | 503 |
Applications
| Application number | Title of the application | Filing Date | Status |
|---|---|---|---|
Array
(
[id] => 19340011
[patent_doc_number] => 12050196
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2024-07-30
[patent_title] => Apparatuses, methods, systems, and computer-readable media for fluid potential artifact correction in reagent delivery systems
[patent_app_type] => utility
[patent_app_number] => 17/499676
[patent_app_country] => US
[patent_app_date] => 2021-10-12
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 22
[patent_figures_cnt] => 28
[patent_no_of_words] => 13952
[patent_no_of_claims] => 15
[patent_no_of_ind_claims] => 1
[patent_words_short_claim] => 140
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17499676
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/499676 | Apparatuses, methods, systems, and computer-readable media for fluid potential artifact correction in reagent delivery systems | Oct 11, 2021 | Issued |
Array
(
[id] => 17627668
[patent_doc_number] => 20220162683
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2022-05-26
[patent_title] => COMPOSITIONS AND METHODS FOR PERFORMING HYBRIDIZATIONS WITH NO DENATURATION
[patent_app_type] => utility
[patent_app_number] => 17/488102
[patent_app_country] => US
[patent_app_date] => 2021-09-28
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 22974
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -19
[patent_words_short_claim] => 2
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17488102
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/488102 | COMPOSITIONS AND METHODS FOR PERFORMING HYBRIDIZATIONS WITH NO DENATURATION | Sep 27, 2021 | Abandoned |
Array
(
[id] => 17399983
[patent_doc_number] => 20220042073
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2022-02-10
[patent_title] => LED DRIVEN PLASMONIC HEATING APPARATUS FOR NUCLEIC ACIDS AMPLIFICATION
[patent_app_type] => utility
[patent_app_number] => 17/410778
[patent_app_country] => US
[patent_app_date] => 2021-08-24
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 8149
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -9
[patent_words_short_claim] => 50
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17410778
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/410778 | LED DRIVEN PLASMONIC HEATING APPARATUS FOR NUCLEIC ACIDS AMPLIFICATION | Aug 23, 2021 | Abandoned |
Array
(
[id] => 18077851
[patent_doc_number] => 20220403463
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2022-12-22
[patent_title] => COMPOSITIONS AND METHODS FOR PAIRWISE SEQUENCING
[patent_app_type] => utility
[patent_app_number] => 17/377279
[patent_app_country] => US
[patent_app_date] => 2021-07-15
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 139593
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -28
[patent_words_short_claim] => 2
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17377279
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/377279 | Compositions and methods for pairwise sequencing | Jul 14, 2021 | Issued |
Array
(
[id] => 17185545
[patent_doc_number] => 20210332430
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2021-10-28
[patent_title] => HIGH PERFORMANCE FLUORESCENCE IMAGING MODULE FOR GENOMIC TESTING ASSAY
[patent_app_type] => utility
[patent_app_number] => 17/373655
[patent_app_country] => US
[patent_app_date] => 2021-07-12
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 35769
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -11
[patent_words_short_claim] => 96
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17373655
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/373655 | HIGH PERFORMANCE FLUORESCENCE IMAGING MODULE FOR GENOMIC TESTING ASSAY | Jul 11, 2021 | Abandoned |
Array
(
[id] => 17300867
[patent_doc_number] => 20210396706
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2021-12-23
[patent_title] => APTAMER-BASED SENSORS FOR DETECTION OF FENTANYL OPIOIDS
[patent_app_type] => utility
[patent_app_number] => 17/354342
[patent_app_country] => US
[patent_app_date] => 2021-06-22
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 22219
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -18
[patent_words_short_claim] => 50
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17354342
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/354342 | Aptamer-based sensors for detection of fentanyl opioids | Jun 21, 2021 | Issued |
Array
(
[id] => 18511716
[patent_doc_number] => 20230227903
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2023-07-20
[patent_title] => METHOD
[patent_app_type] => utility
[patent_app_number] => 18/010826
[patent_app_country] => US
[patent_app_date] => 2021-06-18
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 47523
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -47
[patent_words_short_claim] => 18
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 18010826
[rel_patent_id] =>[rel_patent_doc_number] =>) 18/010826 | METHOD | Jun 17, 2021 | Pending |
Array
(
[id] => 18581934
[patent_doc_number] => 20230264189
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2023-08-24
[patent_title] => ANTI-CONTAMINATION TESTING DEVICE AND METHOD FOR RAPID TESTING OF NUCLEIC ACID AMPLIFICATION PRODUCT, AND USE THEREOF
[patent_app_type] => utility
[patent_app_number] => 18/011317
[patent_app_country] => US
[patent_app_date] => 2021-06-18
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 4474
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -14
[patent_words_short_claim] => 349
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 18011317
[rel_patent_id] =>[rel_patent_doc_number] =>) 18/011317 | ANTI-CONTAMINATION TESTING DEVICE AND METHOD FOR RAPID TESTING OF NUCLEIC ACID AMPLIFICATION PRODUCT, AND USE THEREOF | Jun 17, 2021 | Pending |
Array
(
[id] => 18511716
[patent_doc_number] => 20230227903
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2023-07-20
[patent_title] => METHOD
[patent_app_type] => utility
[patent_app_number] => 18/010826
[patent_app_country] => US
[patent_app_date] => 2021-06-18
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 47523
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -47
[patent_words_short_claim] => 18
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 18010826
[rel_patent_id] =>[rel_patent_doc_number] =>) 18/010826 | METHOD | Jun 17, 2021 | Pending |
Array
(
[id] => 18129020
[patent_doc_number] => 11555219
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2023-01-17
[patent_title] => Method of detecting target nucleic acid molecules
[patent_app_type] => utility
[patent_app_number] => 17/335931
[patent_app_country] => US
[patent_app_date] => 2021-06-01
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 23
[patent_figures_cnt] => 18
[patent_no_of_words] => 32201
[patent_no_of_claims] => 17
[patent_no_of_ind_claims] => 1
[patent_words_short_claim] => 375
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17335931
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/335931 | Method of detecting target nucleic acid molecules | May 31, 2021 | Issued |
Array
(
[id] => 18429742
[patent_doc_number] => 11674957
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2023-06-13
[patent_title] => Molecular wires for detecting a biological or chemical entity or event
[patent_app_type] => utility
[patent_app_number] => 17/245118
[patent_app_country] => US
[patent_app_date] => 2021-04-30
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 15
[patent_figures_cnt] => 21
[patent_no_of_words] => 11626
[patent_no_of_claims] => 37
[patent_no_of_ind_claims] => 1
[patent_words_short_claim] => 82
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17245118
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/245118 | Molecular wires for detecting a biological or chemical entity or event | Apr 29, 2021 | Issued |
Array
(
[id] => 18126850
[patent_doc_number] => 20230012471
[patent_country] => US
[patent_kind] => A9
[patent_issue_date] => 2023-01-12
[patent_title] => METHOD FOR NANOPORE RNA CHARACTERISATION
[patent_app_type] => utility
[patent_app_number] => 17/246462
[patent_app_country] => US
[patent_app_date] => 2021-04-30
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 40521
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -17
[patent_words_short_claim] => 2
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17246462
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/246462 | Method for nanopore RNA characterization | Apr 29, 2021 | Issued |
Array
(
[id] => 18126850
[patent_doc_number] => 20230012471
[patent_country] => US
[patent_kind] => A9
[patent_issue_date] => 2023-01-12
[patent_title] => METHOD FOR NANOPORE RNA CHARACTERISATION
[patent_app_type] => utility
[patent_app_number] => 17/246462
[patent_app_country] => US
[patent_app_date] => 2021-04-30
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 40521
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -17
[patent_words_short_claim] => 2
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17246462
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/246462 | Method for nanopore RNA characterization | Apr 29, 2021 | Issued |
Array
(
[id] => 18726341
[patent_doc_number] => 20230340618
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2023-10-26
[patent_title] => Method for Identifying Microorganisms and/or Their Resistance to Drugs, Cartridge and Related Cartridge Panel to Perform the Method
[patent_app_type] => utility
[patent_app_number] => 17/912520
[patent_app_country] => US
[patent_app_date] => 2021-03-18
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 5040
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -18
[patent_words_short_claim] => 151
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17912520
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/912520 | Method for Identifying Microorganisms and/or Their Resistance to Drugs, Cartridge and Related Cartridge Panel to Perform the Method | Mar 17, 2021 | Pending |
Array
(
[id] => 19273565
[patent_doc_number] => 12023673
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2024-07-02
[patent_title] => Branched nanochannel devices for detection and sorting of nucleic acids
[patent_app_type] => utility
[patent_app_number] => 17/199656
[patent_app_country] => US
[patent_app_date] => 2021-03-12
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 11
[patent_figures_cnt] => 15
[patent_no_of_words] => 8231
[patent_no_of_claims] => 20
[patent_no_of_ind_claims] => 1
[patent_words_short_claim] => 148
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17199656
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/199656 | Branched nanochannel devices for detection and sorting of nucleic acids | Mar 11, 2021 | Issued |
Array
(
[id] => 19265725
[patent_doc_number] => 20240209424
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2024-06-27
[patent_title] => Heteromultivalent Spherical Nucleic Acids and Uses in Therapeutic and Diagnostic Applications
[patent_app_type] => utility
[patent_app_number] => 17/909844
[patent_app_country] => US
[patent_app_date] => 2021-03-09
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 10757
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -16
[patent_words_short_claim] => 67
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17909844
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/909844 | Heteromultivalent Spherical Nucleic Acids and Uses in Therapeutic and Diagnostic Applications | Mar 8, 2021 | Pending |
Array
(
[id] => 16916289
[patent_doc_number] => 20210189381
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2021-06-24
[patent_title] => MICROFLUIDIC DEVICE FOR EXTRACTING, ISOLATING, AND ANALYZING DNA FROM CELLS
[patent_app_type] => utility
[patent_app_number] => 17/194253
[patent_app_country] => US
[patent_app_date] => 2021-03-06
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 15231
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -18
[patent_words_short_claim] => 103
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17194253
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/194253 | Microfluidic device for extracting, isolating, and analyzing DNA from cells | Mar 5, 2021 | Issued |
Array
(
[id] => 17357972
[patent_doc_number] => 20220018768
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2022-01-20
[patent_title] => METHOD FOR MANUFACTURING NANOPARTICLE ARRAY, SURFACE PLASMON RESONANCE-BASED SENSOR AND METHOD FOR ANALYZING USING SAME
[patent_app_type] => utility
[patent_app_number] => 17/185737
[patent_app_country] => US
[patent_app_date] => 2021-02-25
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 6190
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => 0
[patent_words_short_claim] => 65
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17185737
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/185737 | METHOD FOR MANUFACTURING NANOPARTICLE ARRAY, SURFACE PLASMON RESONANCE-BASED SENSOR AND METHOD FOR ANALYZING USING SAME | Feb 24, 2021 | Abandoned |
Array
(
[id] => 17038181
[patent_doc_number] => 20210255140
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2021-08-19
[patent_title] => FLUIDIC STACK AND REFERENCE ELECTRODE FOR SAMPLE COLLECTION AND ANALYSIS AND RELATED METHODS
[patent_app_type] => utility
[patent_app_number] => 17/159778
[patent_app_country] => US
[patent_app_date] => 2021-01-27
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 7436
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -14
[patent_words_short_claim] => 2
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17159778
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/159778 | FLUIDIC STACK AND REFERENCE ELECTRODE FOR SAMPLE COLLECTION AND ANALYSIS AND RELATED METHODS | Jan 26, 2021 | Abandoned |
Array
(
[id] => 16977917
[patent_doc_number] => 20210222154
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2021-07-22
[patent_title] => Operation method of magnetic particles
[patent_app_type] => utility
[patent_app_number] => 17/154525
[patent_app_country] => US
[patent_app_date] => 2021-01-21
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 10729
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -14
[patent_words_short_claim] => 200
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17154525
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/154525 | Operation method of magnetic particles | Jan 20, 2021 | Abandoned |